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In this study, a hybrid pretreatment was adopted for the breakdown of lignin and hydrolysis of hemicellulosic compounds resulting in 61.61% (w\u002Fw) of delignification. The resultant hydrolysate contains both C5 (pentose), C6 (hexose) sugars and lignin-degradatory compounds out of which glucose (25.51 ± 1.79 g\u002FL), xylose (10.68 ± 0.19 g\u002FL), arabinose (15.52 ± 0.28 g\u002FL), acetic acid (1.66 ± 0.02 g\u002FL), furfural (126.98 ± 1.41 mg\u002FL) and HMF (259.74 ± 2.89 mg\u002FL). Further, it was subjected to fermentation using Rhodosporidium toruloides NCIM 3547 resulting in 42.53 ± 0.85 (%, w\u002Fw) of lipid and β-carotene (60.88 ± 0.39 mg\u002FL; 24.35 μg\u002Fg DCW) would facilitate an industrial application. The intracellular lipid bodies were observed by Nile red-stained cells using fluorescent microscopy and its fluorescence intensity was measured by flow cytometer. Subsequently, the lipid was transesterified and the fatty acid profile was analysed using GC–MS to justify its potential for food and biodiesel production. This study reveals that NOC can be utilized for industrial product formation through fermentative strategy by formulating the utilization of lignin and hemicellulosic components towards a circular economy. \n\n                \n                  \n                \n              ",{"EN":177,"VI":178},"Idiosyncratic Fermentation Behaviour of Rhodosporidium toruloides NCIM 3547 in Hemicellulose Hydrolysates Derived from Neem Oilseed Cake for Lipid and β-carotene Synthesis","Hành vi lên men đặc dị của Rhodosporidium toruloides NCIM 3547 trong dịch thủy phân hemicellulose có nguồn gốc từ bã hạt dầu neem để tổng hợp lipid và β-carotene",{"EN":180},"",{"VOID":182},"Chen, C., Zhao, X., Zhao, J., Wu, S., Zhao, Z.K.: Effects of biomass hydrolysis by-products on oleaginous yeast Rhodosporidium toruloides. Bioresour. Technol. 100, 4843–4847 (2009). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biortech.2009.04.041\nShankar, K., Kulkarni, N.S., Jayalakshmi, S.K., Sreeramulu, K.: Saccharification of the pretreated husks of corn, peanut and coffee cherry by the lignocellulolytic enzymes secreted by Sphingobacterium sp. ksn for the production of bioethanol. Biomass Bioenerg. 127, 105298 (2019). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biombioe.2019.105298\nYin, F.W., Zhu, S.Y., Guo, D.S., Ren, L.J., Ji, X.J.: Development of a strategy for the production of docosahexaenoic acid by Schizochytrium sp. from cane molasses and algae-residue. Bioresour. Technol. 271, 118–124 (2019). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biortech.2018.09.114\nQi, G., Sinha, S., Bandyopadhyay, K.K., Lawrence, M., Paul, D.: Triauxic growth of an oleaginous red yeast Rhodosporidium toruloides on waste for enhanced and concomitant lipid and β-carotene production. Microb. Cell Fact. 17, 182 (2018). https:\u002F\u002Fdoi.org\u002F10.1186\u002Fs12934-018-1026-4\nQi, F., Shen, P., Hu, R., Xue, T., Jiang, X.: Carotenoids and lipid production from Rhodosporidium toruloides cultured in tea waste hydrolysate. Biotechnol. Biofuels 13, 74 (2020). https:\u002F\u002Fdoi.org\u002F10.1186\u002Fs13068-020-01712-0\nDaza-Serna, L., Masi, A., Serna-Loaiza, S., Pfnier, J., Stark, G., Mach, R.L., Mach-Aigner, A.R., Friedl, A.: Detoxification strategy of wheat straw hemicellulosic hydrolysate for cultivating Trichoderma reesei: a contribution towards the wheat straw biorefinery. Biomass Conv. Bioref. (2023). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs13399-023-04099-8\nUmai, R.D., Jacob, S., Kumar, V.: Deep Eutectic Solvent Pretreatment of Water Hyacinth for Improved Holocellulosic Saccharification and Fermentative Co-Production of Xylitol and Lipids Using Rhodosporidium toruloides NCIM 3547. 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United Kingdom: Longman 11 group Limited (1991)\nYu, X., Zheng, Y., Dorgan, K.M., Chen, S.: Oil production by oleaginous yeasts using the hydrolysate from pretreatment of wheat straw with dilute sulfuric acid. Bioresour. Technol. 102, 134–140 (2011). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biortech.2011.02.081\nMiller, G.L.: Use of dinitrosalicylic acid reagent for determination of reducing sugar. Anal. Chem. 31, 426–428 (1959). https:\u002F\u002Fdoi.org\u002F10.1021\u002Fac60147a030\nPham, P.J., Hernandez, R., French, W.T., Estill, B.G., Mondala, A.H.: A spectrophotometric method for quantitative determination of xylose in fermentation medium. Biomass Bioenerg. 35, 2814–2821 (2011). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biombioe.2011.03.006\nGong, G., Liu, D., Huang, Y.: Microwave-assisted organic acid pretreatment for enzymatic hydrolysis of rice straw. Bioprocess Biosyst. Eng. 107, 67–73 (2010). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biosystemseng.2010.05.012\nBinod, P., Satyanagalakshmi, K., Sindhu, R., Janu, K.U., Sukumaran, R.K., Pandey, A.: Short duration microwave assisted pretreatment enhances the enzymatic saccharification and fermentable sugar yield from sugarcane bagasse. Renew. Energy 37, 109–116 (2012). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.renene.2011.06.007\nSegal, L., Creely, J.J., Martin, A.E., Conrad, C.M.: An empirical method for estimating the degree of crystallinity of native cellulose using the X-ray diffractometer. Text. Res. J. 29, 786–794 (1959). https:\u002F\u002Fdoi.org\u002F10.1177\u002F004051755902901003\nNaresh, S., Kunasundari, B., Gunny, A.A.N., Teoh, Y.P., Shuit, S.H., Ng, Q.H., Hoo, P.Y.: Isolation and partial characterisation of thermophilic cellulolytic bacteria from north Malaysian tropical mangrove soil. Trop Life Sci Res. 30, 123–147 (2019). https:\u002F\u002Fdoi.org\u002F10.21315\u002Ftlsr2019.30.1.8\nRadha, P., Prabhu, K., Jayakumar, A., AbilashKarthik, S., Ramani, K.: Biochemical and kinetic evaluation of lipase and biosurfactant assisted ex novo synthesis of microbial oil for biodiesel production by Yarrowia lipolytica utilizing chicken tallow. Process Biochem. 95, 17–29 (2019). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.procbio.2020.05.009\nGhanavati, H., Nahvi, I., Roghanian, R.: Monitoring growth and lipid production of new isolated oleaginous yeast Cryptococcus aerius UIMC65 on glucose and xylose cultures. Biotechnol. Bioprocess Eng. 19, 468–477 (2014). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs12257-014-0007-7\nBligh, E.G., Dyer, W.J.: A rapid method of total lipid extraction and purification. Can. J. Biochem. Physiol. 5, 911–917 (1959). https:\u002F\u002Fdoi.org\u002F10.1139\u002Fy59-099\nPrabhu, K., Jayakumar, A., Sreelakshmi, K.P., Raha, A., Maitra, M., Radha, P.: Utilization of microbial oil produced from Pichia kudriavzevii NCIM 3653 using paper mill sludge as an alternative substrate for biodiesel synthesis. Biofuels (2019). https:\u002F\u002Fdoi.org\u002F10.1080\u002F17597269.2019.1619029\nCordell, R.L., Pandya, H., Hubbard, M., Turner, M.A., Monks, P.S.: GC-MS analysis of ethanol and other volatile compounds in micro-volume blood samples—quantifying neonatal exposure. Anal. Bioanal. Chem. 405, 4139–4147 (2013). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00216-013-6809-1\nBarba, A.I.O., Hurtado, M.C., Mata, M.C.S., Ruiz, V.F., Tejada, M.: Application of a UV–vis detection-HPLC method for a rapid determination of lycopene and β-carotene in vegetables. Food Chem. 95, 328–336 (2006). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.foodchem.2005.02.028\nAmirsadeghi, M., Shields-Menard, S., French, W.T., Hernandez, R.: Lipid production by Rhodotorula glutinis from pulp and paper wastewater for biodiesel production. J. Sustain. Bioenergy Syst. 5, 114 (2015). https:\u002F\u002Fdoi.org\u002F10.4236\u002Fjsbs.2015.5301142\nLiu, Q., Kawai, T., Inukai, Y., Aoki, D., Feng, Z., Xiao, Y., Fukushima, K., Lin, X., Shi, W., Busch, W., Matsushita, Y., Li, B.: A lignin-derived material improves plant nutrient bioavailability and growth through its metal chelating capacity. Nat. Commun. 14, 4866 (2023). https:\u002F\u002Fdoi.org\u002F10.1038\u002Fs41467-023-40497-2\nMulimani, V.H., Navindgi, M.C.: Analysis of physiochemical properties of de-oiled neem seed cake for their suitability in producing bio-oil. Int. J. Mech. Prod. Eng. 2320, 2092 (2016)\nRoychoudhury, R.: Ecofriendly pest management for food security, pp. 545–562. Academic Press (2016). https:\u002F\u002Fdoi.org\u002F10.1016\u002FB978-0-12-803265-7.00018-X\nRajeswari, G., Arutselvy, B., Jacob, S.: Delignification of aloe vera rind by mild acid associated microwave pretreatment to persuade enhanced enzymatic saccharification. Waste Biomass Valor. 11, 5965–5975 (2020). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs12649-019-00830-7\nFatriasari, W., Syafii, W., Wistara, N.J., Syamsu, K., Prasetya, B.: Lignin and cellulose changes of betung bamboo (Dendrocalamus asper) pretreated microwave heating. Int. J. Adv. Sci. Eng. Inf. Technol. 6, 187 (2016). https:\u002F\u002Fdoi.org\u002F10.18517\u002Fijaseit.6.2.688\nYaegashi, J., Kirby, J., Ito, M., Sun, J., Dutta, T., Mirsiaghi, M., Sundstrom, E.R., Rodriguez, A., Baidoo, E., Tanjore, D., Pray, T., Sale, K., Singh, S., Keasling, J.D., Simmons, B.A., Singer, S.W., Magnuson, J.K., Arkin, A.P., Skerker, J.M., Gladden, J.M.: Rhodosporidium toruloides: a new platform organism for conversion of lignocellulose into terpene biofuels and bioproducts. Biotechnol. Biofuels (2017). https:\u002F\u002Fdoi.org\u002F10.1186\u002Fs13068-017-0927-5\nZhang, M., Qi, W., Liu, R., Su, R., Wu, S., He, Z.: Fractionating lignocellulose by formic acid: characterization of major components. Biomass Bioenergy 34, 525–532 (2010). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biombioe.2009.12.018\nZhu, Z., Rezende, C.A., Simister, R., McQueen-Mason, S.J., Macquarrie, D.J., Polikarpov, I., Gomez, L.D.: Efficient sugar production from sugarcane bagasse by microwave assisted acid and alkali pretreatment. Biomass Bioenergy 93, 269–278 (2016). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biombioe.2016.06.017\nCorredor, D.Y., Salazar, J.M., Hohn, K.L., Bean, S., Bean, B., Wang, D.: Evaluation and characterization of forage sorghum as feedstock for fermentable sugar production. Appl. Biochem. Biotechnol. 158, 164–179 (2007). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs12010-008-8340-y\nGuo, F., Shi, W., Sun, W., Li, X., Wang, F., Zha, J., Qu, Y.: Differences in the adsorption of enzymes onto lignins from diverse types of lignocellulosic biomass and the underlying mechanism. Biotechnol. Biofuels 7, 38 (2014). https:\u002F\u002Fdoi.org\u002F10.1186\u002F1754-6834-7-38\nChang, V.S., Holtzapple, M.T.: Fundamental factors affecting biomass enzymatic reactivity. Appl. Biochem. Biotechnol. (2000). https:\u002F\u002Fdoi.org\u002F10.1385\u002Fabab:84-86:1-9:5\nHuang, X.F., Liu, J.N., Lu, L.J., Peng, K.M., Yang, G.X., Liu, J.: Culture strategies for lipid production using acetic acid as sole carbon source by Rhodosporidium toruloides. Bioresoure Technol. 206, 141–149 (2016). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biortech.2016.01.073\nHuang, C., Jiang, Y., Guo, G., Hwang, W.: Development of a yeast strain for xylitol production without hydrolysate detoxification as part of the integration of co-product generation within the lignocellulosic ethanol process. Bioresource. 102, 3322–3329 (2011). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biortech.2010.10.111\nDeeba, F., Kumar, K.K., Wani, S.A., Singh, A.K., Sharma, J., Gaur, N.A.: Enhanced biodiesel and β-carotene production in Rhodotorula pacifica INDKK using sugarcane bagasse and molasses by an integrated biorefinery framework. Biores. Technol. 351, 127067 (2022). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biortech.2022.127067\nBeopoulos, A., Nicaud, J.M., Gaillardin, C.: An overview of lipid metabolism in yeasts and its impact on biotechnological processes. Appl. Microbiol. Biotechnol. 90, 1193–1206 (2011). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00253-011-3212-8\nDeng, Z., Xia, A., Liao, Q., Zhu, X., Huang, Y., Fu, Q.: Laccase pretreatment of wheat straw: effects of the physicochemical characteristics and the kinetics of enzymatic hydrolysis. Biotechnol. Biofuels 12, 159 (2019). https:\u002F\u002Fdoi.org\u002F10.1186\u002Fs13068-019-1499-3\nNair, L.G., Agrawal, K., Verma, P.: Organosolv pretreatment: an in-depth purview of mechanics of the system. Bioresour. Bioprocess. 10, 50 (2023). https:\u002F\u002Fdoi.org\u002F10.1186\u002Fs40643-023-00673-0\nContreras-Gámez, M.D.M., Galán-Martín, A., Seixas, N., da Costa Lopes, A.M., Silvestre, A., Castro, E.: Deep eutectic solvents for improved biomass pretreatment: Current status and future prospective towards sustainable processes. Bioresour. Technol. 369, 128396 (2023). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biortech.2022.128396\nPinheiro, M.J., Bonturi, N., Belouah, I., Miranda, E.A., Lahtvee, P.J.: Xylose metabolism and the effect of oxidative stress on lipid and carotenoid production in rhodotorula toruloides: insights for future biorefinery. Front. Bioeng. Biotechnol. 8, 1008 (2020). https:\u002F\u002Fdoi.org\u002F10.3389\u002Ffbioe.2020.01008\nYuan, J., Ai, Z., Zhang, Z., Yan, R., Zeng, Q., Zhu, D.: Microbial oil production by Trichosporon cutaneum B3 using cassava starch. Sheng Wu Gong Cheng Xue Bao. 27, 453–460 (2011)\nNabi, F., Arain, M.A., Rajput, N., Alagawany, M., Liu, J.: Health benefits of carotenoids and potential application in poultry industry: a review. J. Anim. Physiol. Anim. Nutr. 104, 1809–1818 (2020)\nAmi Posteri, R., Mereghetti, P., Porro, D., Doglia, S.M., Branduardi, P.: Fourier transform infrared spectroscopy as a method to study lipid accumulation in oleaginous yeasts. Biotechnol. Biofuels 7, 12 (2014). https:\u002F\u002Fdoi.org\u002F10.1186\u002F1754-6834-7-12\nBellou, S., Triantaphyllidou, I.E., Mizerakis, P., Aggelis, G.: High lipid accumulation in Yarrowia lipolytica cultivated under double limitation of nitrogen and magnesium. J. Biotechnol. 234, 116–126 (2016). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jbiotec.2016.08.001\nCea, M., Sangaletti-Gerhard, N., Acuña, P., Fuentes, I., Jorquera, M., Godoy, K., Osses, F., Navia, R.: Screening transesterifiable lipid accumulating bacteria from sewage sludge for biodiesel production. Biotechnol. Rep. Amst. (Amst) 8, 116–123 (2015). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.btre.2015.10.008\nEncinar, J.M., Pardal, A., Sánchez, N., Nogales, S.: Biodiesel by transesterification of rapeseed oil using ultrasound: a kinetic study of base-catalysed reactions. Energies 11, 2229 (2018). https:\u002F\u002Fdoi.org\u002F10.3390\u002Fen11092229\nRivaldi, J.D., Carvalho, A.K.F., da Conceicao, L.R.V., de Castro, H.F.: Assessing the potential of fatty acids produced by filamentous fungi as feedstock for biodiesel production. Prep. Biochem. Biotechnol. 47, 970–976 (2017). https:\u002F\u002Fdoi.org\u002F10.1080\u002F10826068.2017.1365246\nGonzález-García, Y., Rábago-Panduro, L.M., French, T., CamachoCórdova, D.I., Gutiérrez-González, P., Córdova, J.: High lipids accumulation in Rhodosporidium toruloides by applying single and multiple nutrients limitation in a simple chemically defned medium. Ann. Microbiol. 67, 519–527 (2017). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs13213-017-1282-2\nXu, X.H., Liu, Z.X., Shi, X.Y., Mia, C., Sheng, S., Xu, Y., Wu, F.A., Wang, J.: Fed-batch fermentation of Yarrowia lipolytica using defatted silkworm pupae hydrolysate: A dynamic model-based approach for high yield of lipid production. Waste Biomass Valori. 9, 2399–2411 (2018). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs12649-017-0180-y\nSakaya, S., Tiraporn, J., Tawarat, T., Payungsak, J.: Optimization of microwave-assisted alkali pretreatment of cassava rhizome for enhanced enzymatic hydrolysis glucose yield. Food Energy Secur. 8, e00174 (2019). https:\u002F\u002Fdoi.org\u002F10.1002\u002Ffes3.174\nBinod, P., Sathyanagalakshmi, K., Sindhu, R., Janu, U.K., Sukumaran, K.R., Pandey, A.: Short duration microwave assisted pretreatment enhances the enzymatic saccharification and fermentable sugar yield from sugarcane bagasse. Renew. Energy 37, 106–116 (2012). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.renene.2011.06.007\nZhu, Z., Simister, R., Bird, S., McQueen-Mason, S.J., Gomez, L.D., Macquarrie, D.J.: Microwave assisted acid and alkali pretreatment of Miscanthus biomass for biorefineries. AIMS Bioeng.. 2, 449–468 (2015). https:\u002F\u002Fdoi.org\u002F10.3934\u002Fbioeng.2015.4.449\nMikulski, D., Kłosowski, G.: Microwave-assisted hydrotropic pretreatment as a new and highly efficient way to cellulosic ethanol production from maize distillery stillage. Appl. Microbiol. Biotechnol. (2021). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs00253-021-11258-2\nHu, Z., Wen, Z.: Enhancing enzymatic digestibility of switchgrass by microwave-assisted alkali pretreatment. Biochem. Eng. J. 38, 369–378 (2008). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.bej.2007.08.001\nFatriasari, W., Anita, S.H., Risanto, L.: Microwave assisted acid pretreatment of oil palm empty fruit bunches (EFB) to enhance its fermentable sugar production. Waste Biomass Valor. 8, 379–391 (2016). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs12649-016-9573-6",{"VOID":184},"10.1007\u002Fs12649-024-02441-3","PUBLICATION",[187],"VI","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs12649-024-02441-3",[190,206],{"id":191,"sortIndex":23,"researcher":22,"roles":192,"affiliations":194,"properties":203,"displayName":205,"givenName":22,"familyName":22},"1b23abeb-43fe-4528-ab0e-1ba644f457f6",[193],"AUTHOR",[195],{"id":196,"sortIndex":23,"affiliation":197,"properties":22},"c02ce14c-9b16-47e5-970d-6413f1e6d2b2",{"id":196,"createTime":22,"updateTime":22,"relativeEntities":198,"slug":22,"properties":199,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":202,"statistic":22},[],{"title":200},{"VI":201},"Department of Biotechnology, School of Bioengineering, College of Engineering and Technology, Faculty of Engineering and Technology, SRM Institute 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objective of this paper is to provide a simple modeling that gives insight into how the biogas production depends on one-step anaerobic digestion (AD) parameters. Moreover, a numerical model is developed to describe the dynamic behavior of wastewater AD. The set of equations is integrated using fourth order Runge–Kutta and Jacobian methods. A parametric study is also conducted for the optimization of certain model constants. The model validation is performed by comparing the calculated biogas production rate to the published data. In fact, a good agreement between both experimental and numerical data is obtained. We think that the present model can be useful for the control of an anaerobic digestion process and an eventual extrapolation at an industrial scale.",{"EN":286,"VI":287},"Regulation of Biogas Production Through Waste Water Anaerobic Digestion Process: Modeling and Parameters Optimization","Điều hòa sản xuất biogas thông qua quy trình phân hủy kỵ khí nước thải: Mô hình hóa và tối ưu hóa các thông số",{"VOID":289},"Kasiri, S., Mah, F., Zhang, C., Haveroen, M., Ellsworth, S., Ulrich, A.: Anaerobic processes (Review). Water Environ. Res. 84(10), 1217–1285 (2012)\nSaidi, A., Abada, B.: La biométhanisation : une solution pour un développement durable. Rev. En. Renouv. CER’07 Oujda, 31–35 (2007)\nChen, H.L., Yang, G.H., Chen, J.C., Liu, Y.: Establishment of methanogenesis dynamics model in the process of methane fermentation with manure wastewater. Adv. Mater. Res. 724–725, 378–382 (2013)\nPrice, E.C., Cheremisinoff, R.N.: Biogas production and utilization. Ann Arbor Science Publishers, Ann Arbor (1981)\nDubrovskis, V., Viesturs, U.: Anaerobic digestion of agricultural waste. Zinathe Publishing House, Riga (1988). (in Russian)\nVan Hulle, S.W.H., Vesvikar, M., Poutiainen, H., Nopens, I.: Importance of scale and hydrodynamics for modeling anaerobic digester performance. Chem. Eng. J. 255, 71–77 (2014)\nAbarghaz, Y., El Ghali, K.M., Mahi, M., Werner, C., Bendaou, N., Fekhaoui, M., Abdelaziz, B.H.: Modelling of anaerobic digester biogas production: case study of a pilot project in Morocco. J. Water Reuse Desalin. 3(4), 381–391 (2014)\nDochain, D.: Automatique des bioprocédés. Hermes. Systèmes Automatisés, p. 30–50 (2001)\nAndrews, J.F.: Mathematical models in water pollution control, p. 1978. Wiley, New York (1978)\nMoletta, R., Verrier, D., Albagnac, G.: Dynamic modelling of anaerobic digestion. Water Res. 20(4), 427–434 (1986)\nSimeonov, I., Diop, S.: Stability analysis of some nonlinear anaerobic digestion models. Int. J. Bioautomation 14(1), 37–48 (2010)\nBéteau, J.F., Otton, V., Hihn, J.Y., Delpech, F., Chéruy, A.: Modelling of anaerobic digestion in a fluidised bed with a view to control. Biochem. Eng. J. 24, 255–267 (2005)\nDochain, D., Vanrolleghem, P.: Dynamical modeling and estimation in wastewater treatment processes. IWA Publishing, London (2001)\nSimeonov, I.: Modelling and control of biological anaerobic waste waters treatment processes. Int. J. Arch. Control Sci. 9(3-4), 53–78 (1999)\nSimeonov, I., Momchev, V., Grancharov, D.: Dynamic modeling of mesophilic anaerobic digestion of animal waste. Water Res. 30, 1087–1094 (1996)\nSimeonov, I.: Mathematical modelling and parameters estimation of anaerobic fermentation process. Bioprocess. Eng. 21(4), 377–381 (1999)\nSimeonov, I., Stoyanov, S.: Modelling and dynamic compensator control of the anaerobic digestion of organic wastes. Chem. Biochem. Eng. 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establishment of sustainable bioeconomies requires the utilization of new renewable biomaterials. One such material currently seen as a waste product is oat hulls. Oat hulls exhibit a great potential for the production of dietary fibres due to their exceptionally large hemicellulose content (35%). Their recalcitrant structure however requires a suitable pre-treatment method to access and process the hemicellulose. After a screening of various physical, chemical and physico-chemical pre-treatment methods, including autoclaving, ultrasonication, microwave-, deep eutectic solvents-, as well as alkaline treatments, a combined ultrasonication and alkali pre-treatment method was here found to be the most suitable. A factorial design resulted in optimized conditions of 10 min ultrasonication in water, followed by an incubation in 5 M NaOH at 80 ºC for 9 h yielding solubilisation of 72% of all hemicellulose in the hulls. The method was shown to efficiently break the ester bonds between ferulic acid and the hemicellulose main chain, contributing to its solubilisation. \n                  \n                    \n                      \n                    \n                  \n                ",{"EN":395,"VI":396},"Ultrasound Assisted Alkaline Pre‐treatment Efficiently Solubilises Hemicellulose from Oat Hulls","Tiền xử lý kiềm có hỗ trợ sóng siêu âm hòa tan hiệu quả hemicellulose từ vỏ yến mạch",{"VOID":398},"Ravindran, R., Jaiswal, A.K.: A comprehensive review on pre-treatment strategy for lignocellulosic food industry waste: challenges and opportunities. Bioresour. Technol. 199, 92–102 (2016). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biortech.2015.07.106\n(FAO), F.a.A.O.o.t.U.N.: production quantities of oats. (2020). Accessed 13 Oct 2020\nRedaelli, R., Berardo, N.: Prediction of fibre components in oat hulls by near infrared reflectance spectroscopy. J. Sci. Food Agric. 87(4), 580–585 (2007). https:\u002F\u002Fdoi.org\u002F10.1002\u002Fjsfa.2709\nSchmitz, E., Nordberg Karlsson, E., Adlercreutz, P.: Warming weathers change the chemical composition of oat hulls. Plant Biol. (2020). https:\u002F\u002Fdoi.org\u002F10.1111\u002Fplb.13171\nSun, S., Sun, S., Cao, X., Sun, R.: The role of pretreatment in improving the enzymatic hydrolysis of lignocellulosic materials. Bioresour. Technol. 199, 49–58 (2016). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biortech.2015.08.061\nHimmel, M.E., Ding, S.-Y., Johnson, D.K., Adney, W.S., Nimlos, M.R., Brady, J.W., Foust, T.D.: Biomass recalcitrance: engineering plants and enzymes for biofuels production. Science 315(5813), 804–807 (2007). https:\u002F\u002Fdoi.org\u002F10.1126\u002Fscience.1137016\nBhutto, A.W., Qureshi, K., Harijan, K., Abro, R., Abbas, T., Bazmi, A.A., Karim, S., Yu, G.: Insight into progress in pre-treatment of lignocellulosic biomass. Energy 122, 724–745 (2017). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.energy.2017.01.005\nBroekaert, W.F., Courtin, C.M., Verbeke, K., Van de Wiele, T., Verstraete, W., Delcour, J.A.: Prebiotic and other health-related effects of cereal-derived arabinoxylans, arabinoxylan-oligosaccharides, and xylooligosaccharides. Crit. Rev. Food Sci. Nutr. 51(2), 178–194 (2011). https:\u002F\u002Fdoi.org\u002F10.1080\u002F10408390903044768\nMorais, E.S., Mendonça, P.V., Coelho, J.F.J., Freire, M.G., Freire, C.S.R., Coutinho, J.A.P., Silvestre, A.J.D.: Deep eutectic solvent aqueous solutions as efficient media for the solubilization of hardwood xylans. ChemSusChem 11(4), 753–762 (2018). https:\u002F\u002Fdoi.org\u002F10.1002\u002Fcssc.201702007\nSchmitz, E., Francis, J., Gutke, K., Nordberg Karlsson, E., Adlercreutz, P., Paulsson, M.: Chemical and biochemical bleaching of oat hulls: The effect of hydrogen peroxide, laccase, xylanase and sonication on optical properties and chemical composition. Manuscript submitted for publication (2020)\nSajib, M., Falck, P., Sardari, R.R.R., Mathew, S., Grey, C., Karlsson, N., Adlercreutz, E.: Valorization of Brewer’s spent grain to prebiotic oligosaccharide: production, xylanase catalyzed hydrolysis, in-vitro evaluation with probiotic strains and in a batch human fecal fermentation model. J. Biotechnol. 268, 61–70 (2018). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.jbiotec.2018.01.005\nFalck, P., Aronsson, A., Grey, C., Stålbrand, H., Karlsson, N., Adlercreutz, E.: Production of arabinoxylan-oligosaccharide mixtures of varying composition from rye bran by a combination of process conditions and type of xylanase. Bioresour. Technol. 174, 118–125 (2014). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.biortech.2014.09.139\nAguedo, M., Ruiz, H.A., Richel, A.: Non-alkaline solubilization of arabinoxylans from destarched wheat bran using hydrothermal microwave processing and comparison with the hydrolysis by an endoxylanase. Chem. Eng. Process. 96, 72–82 (2015). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.cep.2015.07.020\nLópez-Linares, J.C., García-Cubero, M.T., Lucas, S., González-Benito, G., Coca, M.: Microwave assisted hydrothermal as greener pretreatment of brewer’s spent grains for biobutanol production. Chem. Eng. J. 368, 1045–1055 (2019). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.cej.2019.03.032\nEbringerová, A., Hromádková, Z.: Effect of ultrasound on the extractability of corn bran hemicelluloses. Ultrason. Sonochem. 9(4), 225–229 (2002). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fs1350-4177(01)00124-9\nSun, J.-X., Sun, R., Sun, X.-F., Su, Y.: Fractional and physico-chemical characterization of hemicelluloses from ultrasonic irradiated sugarcane bagasse. Carbohydr. Res. 339(2), 291–300 (2004). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.carres.2003.10.027\nSun, R., Tomkinson, J.: Characterization of hemicelluloses obtained by classical and ultrasonically assisted extractions from wheat straw. Carbohydr. Polym. 50(3), 263–271 (2002). https:\u002F\u002Fdoi.org\u002F10.1016\u002FS0144-8617(02)00037-1\nSun, R.C., Tomkinson, J., Ma, P.L., Liang, S.F.: Comparative study of hemicelluloses from rice straw by alkali and hydrogen peroxide treatments. Carbohydr. Polym. 42(2), 111–122 (2000). https:\u002F\u002Fdoi.org\u002F10.1016\u002FS0144-8617(99)00136-8\nLuo, J., Fang, Z., Smith, R.L.: Ultrasound-enhanced conversion of biomass to biofuels. Prog. Energy Combust. Sci. 41, 56–93 (2014). https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.pecs.2013.11.001\nXu, J.K., Sun, R.C.: Chapter 19 - Recent advances in alkaline pretreatment of a lignocellulosic biomass. 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Asian J. Pharm. Clin. Res. 10, 116–119 (2017)",{"doi":769},"10.22159\u002Fajpcr.2017.v10i7.18095",{"id":22,"text":771,"url":22,"identifiers":772},"Zou, Q., Qu, K., Luo, Y., Yin, D., Ju, Y., Tang, H.: Predicting Diabetes Mellitus with Machine Learning techniques. Front. Genet. 9, 515 (2018)",{"doi":773},"10.3389\u002Ffgene.2018.00515",{"id":22,"text":775,"url":22,"identifiers":776},"Guo, Y., Jiang, N., Zhang, L., Yin, M.: Green synthesis of gold nanoparticles from Fritillaria Cirrhosa and its anti-diabetic activity on Streptozotocin induced rats. Arab. J. Chem. 13, 5096–5106 (2020)",{"doi":777},"10.1016\u002Fj.arabjc.2020.02.009",{"id":22,"text":779,"url":22,"identifiers":780},"Nilavukkarasi, M., Vijayakumar, S., Kalaskar, M., Nilambari, G., Shailendra, G., Praseetha, P.K.: Capparis Zeylanica L. conjugated TiO2 nanoparticles as bio-enhancers for antimicrobial and chronic wound repair. Biochem. Biophys. Res. Commun. 623 (2020)",{"doi":781},"10.1016\u002Fj.bbrc.2022.07.064",{"id":22,"text":783,"url":22,"identifiers":784},"Vembu, S., Vijayakumar, S., Nilavukkarasi, M., Vidhya, E., Punitha, V.N.: Phytosynthesis of TiO2 nanoparticles in diverse applications: What is the exact mechanism of action? J. Sens. 3, 100161 (2022)",{},{"id":22,"text":786,"url":22,"identifiers":787},"Khashayar, S., Majid, B., Ran, W., Mohammad, R.K.: Distribution of antimicrobial resistance genes and integrons among Shigella spp. isolated from water sources. J. Glob Antimicrob. Resist. 19, 122–128 (2019)",{"doi":788},"10.1016\u002Fj.jgar.2019.04.020",{"id":22,"text":790,"url":22,"identifiers":791},"Khashayar, S., Lili, Z., Abbas, S.D., Majid, K., Abolghasem, H., Hongduo, B., Mohadeseh, B., Mojtaba, M., Maoda, P., Tao, H., Majid, B., Ran, W.: Effective control of Shigella contamination in different foods using a novel six-phage cocktail. LWT 144 (2021)",{"doi":792},"10.1016\u002Fj.lwt.2021.111137",{"id":22,"text":794,"url":22,"identifiers":795},"Majedeh, B., Akbar, H.N., Hesam, A.B., Sepideh, H., Issa, A., Farzaneh, F.: An overview of modified sensors with focus on electrochemical sensing of sulfite in food samples. Eurasian Chem. Commun. 3, 116–138 (2021)",{},{"id":22,"text":797,"url":22,"identifiers":798},"Subhapriya, S., Gomathipriya, P.: Green synthesis of titanium dioxide (TiO2) nanoparticles by Trigonella foenum-graecum extract and its antimicrobial properties. Microb. Pathog. 116, 215–220 (2018)",{"doi":799},"10.1016\u002Fj.micpath.2018.01.027",{"id":22,"text":801,"url":22,"identifiers":802},"Punitha, V.N., Vijayakumar, S., Sakthivel, B., Praseetha, P.K.: Protection of neuronal cell lines, antimicrobial and photocatalytic behaviours of eco-friendly TiO2 nanoparticles. J. Environ. Chem. Eng. 104343 (2020)",{},{"id":22,"text":804,"url":22,"identifiers":805},"Srinivasan, K., Ramarao, P.: Animal models in type 2 Diabetes research: An overview. Indian J. Med. Res. 125, 451–472 (2007)",{},{"id":22,"text":807,"url":22,"identifiers":808},"Selvan, V.T., Manikandan, L., Senthil Kumar, G.P., Suresh, R., Kakoti, B.B., Gomathi, P.: Antidiabetic and antioxidant effect of methanol extract of Artanema sesamoides in streptatozocin-induced diabetic rats. Int. J. Appl. Res. Nat. Prod., 25–33 (2008)",{},{"id":22,"text":810,"url":22,"identifiers":811},"Nagaraja, S., Ahmed, S.S., Goudanavar, P., Fattepur, S., Meravanige, G., Shariff, A., Shiroorkar, P.N., Habeebuddin, M.: Green Synthesis and characterization of silver nanoparticles of Psidium guajava Leaf Extract and evaluation for its antidiabetic activity. Molecules. 27, 4336 (2022)",{"doi":812},"10.3390\u002Fmolecules27144336",{"id":22,"text":814,"url":22,"identifiers":815},"Ogbonnia, S., Odimegwu, J., Enwuru, V.: Evaluation of hypoglycaemic and hypolipidaemic effects of aqueous ethanolic extracts of Treculia africana Decne and Bryophyllum pinnatum, Lam. And their mixture on streptozotocin (STZ)-induced diabetic rats. Afr. J. Biotech. 7, 2935–2939 (2008)",{},{"id":22,"text":817,"url":22,"identifiers":818},"Neha, S., Reena, L.: Anti-diabetic property of Green Synthesized Zinc-Oxide nanoparticles from Leaf Extract of Chrysanthemum indicum Plant. Rasayan J. Chem. 13, 570–573 (2020)",{"doi":819},"10.31788\u002FRJC.2020.1315417",{"id":22,"text":821,"url":22,"identifiers":822},"Sajeeth, C.I., Manna, P.K., Manavalan, R., Jolly, C.I.: Antidiabetic activity of a polyherbal formulation, ESF\u002FAY\u002F500 in streptozotocin induced diabetic male albino rats: A Research. Int. J. Drug Dev. Res. 1, 311–322 (2010)",{},{"id":824,"createTime":825,"updateTime":826,"relativeEntities":827,"slug":828,"properties":829,"entityType":185,"verifyStatus":292,"verifyTime":840,"verifyNote":294,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":841,"fullTextUrl":22,"authors":842,"publicationType":220,"publisherRelationship":877,"citationCount":933,"citationInfo":934,"publishDate":937,"publishYear":935,"citationAnalyzeStatus":762,"lastCitationAnalyze":826,"indexDatabases":938,"openAccess":22,"references":22,"isForceReanalyzing":275},"971e2d4e-672f-4784-80e0-4cf3bfbf6ca3","2024-01-15T11:12:33.415+00:00","2026-08-19T03:01:25.851+00:00",[],"Characteristic-of-Hermetia-illucens-Fatty-Acid-and-that-of-the-Fatty-Acid-Methyl-Ester-Synthesize-Based-on-Upcycling-of-Perishable-Waste",{"abstract":830,"title":832,"gsPaper":834,"references":836,"doi":838},{"EN":831},"Physicochemical properties of biodiesel are influenced by the characteristic of fatty acids including chain length, degree of unsaturation and composition of fatty acid. The aim of this work was to investigate the influence of Hermetia illucens fatty acid properties on biodiesel quality using a transesterification reaction. H. illucens larvae were grown on fruit waste and food waste. The harvested pre-pupae were processed into dry biomass and stored in a container for further use. H. illucens pre-pupae were transesterified with methanol in the presence of sulphuric acid as catalyst. The reaction was conducted using methanol to sample mass of 6:1, reaction time (255 min), reaction temperature (50 °C), and catalyst loading (20v\u002Fv%). Biodiesel quality was tested according to the ASTM and EN standard. The degree of unsaturation, long chain saturated factor and methyl ester composition of each biodiesel also influence the biofuel’s properties. Fatty acid extracted from the H. illucens biomass showed high saturated fatty acid (SFA) derived from both feeds. Lauric acids were found to be the predominant SFA. The properties of FAME produced under optimum conditions, including density, kinetic viscosity, copper strip corrosion, oxidation stability and cloud points were in accordance with EN 14214 and ASTM 6751 biodiesel standards. \n                  \n                    \n                      \n                    \n                  \n                ",{"EN":833},"Characteristic of Hermetia illucens Fatty Acid and that of the Fatty Acid Methyl Ester Synthesize Based on Upcycling of Perishable Waste",{"VOID":835},"[\"11290296005971871595\"]",{"VOID":837},"Surendra, K.C., Robert, O., Tomberlin, J.K., Rajesh, J., Samir, K.K.: Bioconversion oforganic wastes into biodiesel and animal feed via insect farming. Renew. Energy 98, 197–202 (2016)\nAtapour, M., Kariminia, H.R., Moslehabadi, P.M.: Optimization of biodiesel production by alkali-catalyzed transesterification of used frying oil. Process Saf. 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Fuel 90, 1545–1548 (2011)\nZheng, L., Qiu, N., Cai, H., Tomberlin, J.K., Yu, Z., Li, Q.: Bioconversion of dairy manure by black soldier fly (Diptera: Stratiomyidae) for biodiesel and sugar production. Waste Manage. 31, 1316–1320 (2011)\nNewton, L., Sheppard C., Watson, D.W., Burtle, G., Dov, R.: Using the Black Soldier fly, Hermetia illucens, as a Value-Added Tool for the Management of Swine manure. DIRECTOR of the Animal and Poultry Waste Management Center, North Carolina State University, pp. 1–17 (2005)\nZurbrügg, C., Tockner, K., Diener, S.: Conversion of organic material by black soldier fly larvae: establishing optimal feeding rates. Waste Manage. Res. 27, 603–610 (2009)\nSheppard, D.C., Tomberlin, J.K., Joyce, J.A., Kiser, B.C., Sumner, S.M.: Rearing methods for the black soldier fly (Diptera: Stratiomyidae). J. Med. Entomol. 39, 695–698 (2002)\nTomberlin, J.K., Sheppard, D.C.: Factors influencing mating and oviposition of black soldier fly (Diptera: Stratiomyidae) in a colony. J. Entomol. Sci. 37, 345–352 (2002)\nLeong, S.Y., Kutty, S.R.M., Malakahmad, A., Tan, C.K.: Feasibility study of biodiesel production using lipids of Hermetia illucens larva fed with organic waste. Waste Manage. 47, 84–90 (2016)\nKutty, S.R.M., Leong, S.Y., Tan, C.K., Tey, L.H.: Comparative study on the effect of organic waste on lauric acid produce by Hermetia illucens larvae via bioconversion. J. Eng. Sci. Technol. 8, 52–63 (2015)\nLeong S.Y., Kutty, S.R.M., Tan, C.K.: Growth performance, waste reduction and efficiency of conversion of digested food waste by Hermetia illucens larvae via bioconversion. J. Pure Appl. Microbio. 9, Special Edition (2015)\nZheng, L., Hou, Y., Li, W., Yang, S., Li, Q., Yu, Z.: Biodiesel production from rice straw and restaurant waste employing black soldier fly assisted by microbes. Energy 47, 225–229 (2012)\nSheppard, C., Newton, G.L., Thompson, S.A., Savage, S.: A value added manure management system using the black soldier fly. Biores. Technol. 50, 275–279 (1994)\nMyers, H.M., Tomberlin, J.K., Lambert, B.D., Kattes, D.H.: Development of black soldier fly (Diptera: Stratiomyidae) larvae fed dairy manure. Environ. Entomol. 37, 11–15 (2008)\nZheng, L., Li, Q., Zhang, J., Yu, Z.: Double the biodiesel yield: rearing black soldier fly larvae, Hermetia illucens, on solid residual fraction of restaurant. Renew. Energy 41, 75–79 (2012)\nSheppard, C.: House fly and lesser house fly control utilizing the black soldier fly in manure management systems for caged laying hens. Environ. Entomol. 12, 1439–1442 (1983)\nTomberlin, J.K., Sheppard, C.: Lekking behavior of the black soldier fly (Diptera: Stratiomyidae). Florida Entomol. 84, 729–730 (2001)\nHorwitz, W. and Latimer, G. W. (eds.): Official Methods of Analysis of AOAC International, 18th ed. USA: AOAC International suite 500481 North Frederick Avenuegaithersburg, Maryland 20877–2417, USA (2005)\nTan, K.T., Lee, K.T., Mohamed, A.R.: Effects of free fatty acids, water content and co-solvent on biodiesel production by supercritical methanol reaction. J. Supercrit. Fluid. 53, 88–91 (2010)\nSarakatsanis, E.G., Giakoumis, C.K.: Estimation of biodiesel cetane number, density, kinematic viscosity and heating values from its fatty acid weight composition. Fuel 222, 574–585 (2018)\nGerhard, K.: Dependence of biodiesel fuel properties on the structure of fatty acid alkyl esters. Fuel Process. Technol. 86, 1059–1070 (2005)\nVenkatesh, K., Morrison, P.E.: Studies of weight changes and amount of food ingested by the stable fly, Stomoxys calcitrans (Diptera, Muscidae). Can Entomol. 112, 141–149 (1980)\nUshakova, N.A., Brodskii, E.S., Kovalenko, A.A., Bastrakov, A.I., Kozlova, A.A., Pavlov, D.S.: Characteristics of lipid fractions of larvae of the black soldier fly Hermetia illucens. Dokl. Biochem. Biophys. 468, 209–212 (2016)\nArrese, E.L., Soulages, J.L.: Insect fat body: energy metabolism and regulation. Annu Rev Entomol. 55, 207–225 (2010)\nBartu, I., Tomcala, A., Socha, R., Šimek, P., Kodrik, D.: Analysis of the lipids mobilized by adipokinetic hormones in the firebug Pyrrhocoris apterus (Heteroptera: Pyrrhocoridae). Eur. J. Entomol. 107, 509–520 (2010)\nRyan, R.O., Van der Horst, D.J.: Lipid transport biochemistry and its role in energy production. Annu. Rev. Entomol. 45, 233–260 (2000)\nVan der Horst, D.J.: Insect adipokinetic hormones: release and integration of flight energy metabolism. Comp. Biochem. Physiol. B Biochem. Mol. Biol. 136, 217–226 (2003)\nGodwin, A.A., Richard, B., Doug, S., Kirsten, H., Muhammad, A.I.: Influence of fatty acid structure on fuel properties of algae derived biodiesel. Procedia Eng. 56, 591–596 (2013)\nGiakoumis, E.G., Sarakatsanis, C.K.: Estimation of biodiesel cetane number, density, kinematic viscosity and heating values from its fatty acid weight composition. Fuel 222, 574–585 (2018)\nAbraham, M.F., Lourdes, C., Ángel, R., Ramos, P., Carmen, M.J.: Influence of fatty acid composition of raw materials on biodiesel properties. Bioresour. Technol. 100, 261–268 (2009)\nAshraful, A.M., Masjuki, H.H., Kalam, M.A.: Particulate matter, carbon emissions and elemental compositions from a diesel engine exhaust fuelled with diesel–biodiesel blends. Atmos. Environ. 120, 463–474 (2015)\nMartinez-Guerra, E., Gude, V.G.: Determining optimum pulse mode for ultrasound enhanced biodiesel production. J. Ind. Eng. Chem. 35, 14–19 (2016)\nDatta, A., Mandal, B.K.: A comprehensive review of biodiesel as an alternative fuel for compression ignition engine. Renew. Sust. Energ. Rev. 57, 799–821 (2016)\nMoser, B.R.: Fuel property enhancement of biodiesel fuels from common and alternative feedstocks via complementary blending. Renew. 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This study aims to evaluate the production of methane and carbon dioxide, degradability by in vitro ruminal fermentation in goats diet supplemented with nuts (Caesalpinia coriaria Jacq. Willd.) for adoption by livestock farmers. Condensed tannins (CT) of C. coriaria inclusion rates were 0 (CT0 or control, no CT), 1.5 (CT1.5), 3.0 (CT3), 4.5 (CT4.5) and 6.0% (CT6) of the total mixed ration. All CT treatments reduced (linear, quadratic and cubic; P = 0.001) CH4, CO2 and H2 gases, and had some increasing effect on total biogas production. However, CT3 reduced greenhouse gases and had the highest biogas production. Addition of tannins from cascalote fruit waste (C. coriaria Jacq. Willd.) to goats diet at CT3 level reduced methane production, improved fermentation and ruminal degradability in vitro and has potential to be used as ecofriendly feed or feed additive. \n                  \n                    \n                      \n                    \n                  \n                ",{"EN":949},"Valorization of Caesalpinia coriaria Fruit Waste to Enhance the Ruminal Mitigation of Greenhouse Gases Production",{"VOID":951},"[\"8305308346733991953\"]",{"VOID":953},"Ikhuoso, O.A., Adegbeye, M.J., Elghandour, M.M.Y., Mellado, M., Al-Dobaib, S.N., Salem, A.Z.M.: Climate change and agriculture: the competition for limited resources amidst crop farmers-livestock herding conflict in Nigeria - A review. J. Clean. Prod. 272, 123104 (2020)\nMarino, R., Atzori, A.S., D’Andrea, M., Iovane, G., Trabalza-Marinucci, M., Rinaldi, L.: Climate change: production performance, health issues, greenhouse gas emissions and mitigation strategies in sheep and goat farming. Small Rumin. Res. 135, 50–59 (2016)\nAdegbeye, M.J., Ravi Kanth Reddy, P., Obaisi, A.I., Elghandour, M.M.Y., Oyebamiji, K.J., Salem, A.Z.M., Morakinyo-Fasipe, O.T., Cipriano-Salazar, M., Camacho-Díaz, L.M.: Sustainable agriculture options for production, greenhouse gasses and pollution alleviation, and nutrient recycling in emerging and transitional nations - an overview. J. Clean. Prod. 242, 118319 (2020)\nGerber, P.J., Steinfeld, H., Henderson, B., Mottet, A., Opio, C., Dijkman, J., Falcucci, A., Tempio, G.: Tackling Climate Change through Livestock A Global Assessment of Emissions and Mitigation Opportunities. Food and Agriculture Organization of the United Nations (FAO), Rome (2013)\nFood and Agriculture Organization of the United Nations (FAO): Statistical Yearbook. Food and Agriculture Organization of the United Nations, Rome (2016)\nForabosco, F., Chitchyan, Z., Mantovani, R.: Methane, nitrous oxide emissions and mitigation strategies for livestock in developing countries: a review. S. Afr. J. Anim. Sci. 47, 268–280 (2017)\nFood and Agriculture Organization of the united nation FAOSTAT. http:\u002F\u002Fwww.fao.org\u002Ffaostat\u002Fen\u002F#compare.(2017). Accessed 19 June 2019\nAdegbeye, M.J., Elghandour, M.M.Y., Monroy, J.C., Abegunde, T.O., Salem, A.Z.M., Barbabosa-Pliego, A., Faniyi, T.O.: Potential influence of Yucca extract as feed additive on greenhouse gases emission for a cleaner livestock and aquaculture farming – A Review. J. Clean. Prod. 239, 118074 (2019)\nHuang, Q., Liu, X., Zhao, G., Hu, T., Wang, Y.: Potential and challenges of tannins as an alternative to in-feed antibiotics for farm animal production. Anim. Nutr. 4, 137–150 (2018)\nPatra, A.K., Saxena, J.: Exploitation of dietary tannins to improve rumen metabolism and ruminant nutrition. J. Sci. Food Agric. 91, 24–37 (2011)\nSanchez-Carranza, J.N., Alvarez, L., Marquina-Bahena, S., Salas-Vidal, E., Cuevas, V., Jimenez, E.W., Veloz, R.A.G., Carraz, M., Gonzalez-Maya, L.: Phenolic compounds isolated from Caesalpiniacoriaria induce S and G2\u002FM phase cell cycle arrest differentially and trigger cell death by interfering with microtubule dynamics in cancer cell lines. Molecules 22, 1–14 (2017)\nManuel-Pablo, A., Elghandour, M.Y., Olivares-Perez, J., Rojas-Hernandez, S., Cipriano-Salazar, M., Cruz-Lagunas, B., Camacho-Diaz, L.M.: Productive performance, rumen fermentation and carcass yield of goats supplemented with cascalote fruits (Caesalpiniacoriaria J. Willd). Agrofor. Syst. 94(4), 1381–1391 (2020). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10457-018-0312-9\nJesus-Martinez, X.D., Olmedo-Juarez, A., Rojas Hernandez, S., Zamilpa, A., Mendoza, P., de Gives, M.E., Villa-Mancera, L.-A., Camacho-Diaz, L.M., Cipriano Salazar, M., Olivares-Perez, J.: Evaluation of the hydroalcoholic extract elaborated with CaesalpiniacoriariaJacqWilld tree fruits in the control of HaemonchuscontortusRudolphi. Agrofor. Syst. 94(1315), 1321 (2020). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs10457-019-00398-0(0123456789\nLokeswari, N., Sujatha, P.: Isolation of tannins from Caesalpiniacoriaria and effect of physical parameters. Int. Res. J. Pharm. 2, 146–152 (2011)\nAOAC: Official Methods of Analysis, 16th edn. Association of Official Analytical Chemists, Arlington (1997)\nNRC: Nutrient requirements of horses, 6th edn. National Academy Press, Washington DC (2007)\nGoering, M.K., Van Soest, P.J.: Forage Fibre Analysis (Apparatus, Reagents, Procedures and Some Applications). Agricultural Research Service USDA, Washington, DC (1970)\nTheodorou, M.K., Williams, B.A., Dhanoa, M.S., McAllan, A.B., France, J.: A simple gas production method using a pressure transducer to determine the fermentation kinetics of ruminant feeds. Anim. Feed Sci. Technol. 48, 185–197 (1994)\nVan Soest, P.J., Robertson, J.B., Lewis, B.A.: Methods for dietary fiber, neutral detergent fiber, and non-starch polysaccharides in relation to animal nutrition. J. Dairy Sci. 74, 3583–3597 (1991)\nTerrill, T.H., Rowan, A.M., Douglas, G.B., Barry, T.N.: Determination of extractable and bound condensed tannin concentrations in forage plants, protein-concentrate meals and cereal-grains. J. Sci. Food Agric. 58, 321–329 (1992)\nLópez, J., Tejada, I., Vazquez, C., De Dios, G., Shimada, A.: Condensed tannins in Sumid tropical fodder crops and their In vitro biological activity part 1. J. Sci. Food Agric. 84, 295–299 (2004)\nHagerman, A. E.: Tannin analysis. Miami University, Oxford, OH. Disponible en. http:\u002F\u002Fwww.muohio.edu\u002F~chmcwis\u002Ffaculty\u002Fhagerman.htm.(1991)\nSAS: Statistical Analysis System User’s guide: statistics, version 9.0. Cary, NC: SAS Institute (2002)\nFrance, J., Dijkstra, J., Dhanoa, M.S., Lopez, S., Bannink, A.: Estimating the extent of degradation of ruminant feeds from a description of their gas production profiles observed in vitro: derivation of models and other mathematical considerations. Br. J. Nutr. 83, 143–150 (2000)\nKholif, A.E., Gouda, G.A., Morsy, T.A., Salem, A.Z.M., Lopez, S., Kholif, A.M.: Moringaoleifera leaf meal as a protein source in lactating goat’s diets: feed intake, digestibility, ruminal fermentation, milk yield and composition, and its fatty acids profile. Small Rumin. Res. 129, 129–137 (2015)\nZamiri, M.J., RajaeiSharifabadi, H., Bagheri, A.S., Solhjoo, A.: Effects of inclusion of licorice (Glycyrrhizaglabra L.) leaves, a tannin-containing plant, in a low-protein diet on feedlot performance and carcass characteristics of fat-tailed lambs. Trop. Anim. Health Prod. 47, 597–602 (2015)\nBhatta, R., Uyeno, Y., Tajima, K., Takenaka, A., Yabumoto, Y., Nonaka, I., Enishi, O., Kurihara, M.: Difference in the nature of tannins on in vitroruminal methane and volatile fatty acid production and on methanogenicarchaea and protozoal Populations. J. Dairy Sci. 92, 5512–5522 (2009)\nGetachew, G., DePeters, E.J., Robinson, P.H.: In vitro gas production provides effective method for assessing ruminant feeds. Calif. Agric. 58, 1–12 (2004)\nJohnson, K.A., Johnson, D.E.: Methane emissions from cattle. J. Anim. Sci. 73, 2483–2492 (1995)\nHernandez, A., Kholif, A.E., Lugo-Coyote, R., Elghandour, M.M.Y., Cipriano, M., Rodríguez, G.B., Odongo, N.E., Salem, A.Z.M.: The effect of garlic oil, xylanase enzyme and yeast on biomethane and carbon dioxide production from 60-d old Holstein dairy calves fed a high concentrate diet. J. Clean. Prod. 142, 2384–2392 (2017)\nElghandour, M.M., Adegbeye, M.J., Barbabosa-Pilego, A., Perez, R., Hernandez, S.R., Zaragoza-Bastida, R., Salem, A.Z.M.: Equine contribution in methane emission and its mitigation strategies. J. Equine Vet. 72, 56–63 (2019)\nReddish, M.A., Kung, L.: The effect of feeding a dry enzyme mixture with fibrolytic activity on the performance of lactating cows and digestibility of a diet for sheep. J. Dairy Sci. 90, 4724–4729 (2007)\nElghandour, M.M.Y., Kholif, A.E., Marquez-Molina, O., Vazquez-Armijo, J.F., Puniya, A.K., Salem, A.Z.M.: Influence of individual or mixed cellulase and xylanase mixture on in vitro rumen gas production kinetics of total mixed rations with different maize silage and concentrate ratios. Turk. J. Vet. Anim. Sci. 39, 435–442 (2015)\nVallejo-Hernandez, L.H., Elghandour, M.M.Y., Greiner, R., Anele, U.Y., Rivas-Caceres, R.R., Barros-Rodríguez, M., Salem, A.Z.M.: Environmental impact of yeast and exogenous xylanase on mitigating carbon dioxide and enteric methane production in ruminants. J. Clean. Prod. 189, 40–46 (2018)\nSanchez, N., Mendoza, G.D., Martinez, J.A., Hernandez, P.A., Camacho, D.L.M., Lee-Rangel, H.A., Vazquez, R., Flores, R.: Effect of Caesalpiniacoriaria fruits and soybean oil on finishing lamb performance and meat characteristics. Biomed. Res. Int. 2018, 1–6 (2018)\nNkrumah, J.D., Okine, E.K., Mathison, G.W., Schmid, K., Li, C., Basarab, J.A., Price, M.A., Wang, Z., Moore, S.S.: Relationships of feedlot feed efficiency, performance, and feeding behavior with metabolic rate, methane production, and energy partitioning in beef cattle. J. Anim. 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In this study, chitosan as a deacetylated derivative of chitin, non-toxic, biodegradable and biocompatible polysaccharide, was extracted from shrimp wastes by demineralization, deproteinization and deacetylation processes. The extracted chitosan was characterized by SEM and FTIR analyses. The weight efficiency of chitosan from shrimp wastes and the degree of deacetylation were 26.25 and 86%, respectively. The extracted chitosan was used to betacyanin and betaxanthin adsorption from red beetroots. Betacyanin and betaxanthin adsorption experiments were conducted based on a rotatable central composite design and analyzed using response surface methodology for three independent factors, initial solution pH (3–7), initial concentration (50–150 mg\u002FL) and adsorbent amount (0.01–0.05 g). The optimum adsorption capacity for the betacyanin and betaxanthin pigments were 144.15 and 114.50 mg\u002Fg, respectively. The chitosan extracted from shrimp wastes could be used as a proper and available adsorbent for adsorption of betacyanin and betaxanthin pigments from beetroot plant.",{"EN":1142},"Extraction of Betacyanin and Betaxanthin Pigments from Red Beetroots by Chitosan Extracted from Shrimp Wastes",{"VOID":1144},"[]",{"VOID":1146},"Al Sagheer, F., Al-Sughayer, M., Muslim, S., Elsabee, M.Z.: Extraction and characterization of chitin and chitosan from marine sources in Arabian Gulf. Carbohydr. Polym. 77(2), 410–419 (2009)\nKumari, S., Rath, P., Kumar, A.S.H., Tiwari, T.: Extraction and characterization of chitin and chitosan from fishery waste by chemical method. Environ. Technol. Innov. 3, 77–85 (2015)\nPark, B.K., Kim, M.-M.: Applications of chitin and its derivatives in biological medicine. Int. J. Mol. Sci. 11(12), 5152–5164 (2010)\nCira, L.A., Huerta, S., Hall, G.M., Shirai, K.: Pilot scale lactic acid fermentation of shrimp wastes for chitin recovery. Process Biochem. 37(12), 1359–1366 (2002)\nMahlous, M., Tahtat, D., Benamer, S., Khodja, A.N.: Gamma irradiation-aided chitin\u002Fchitosan extraction from prawn shells. Nucl. Instr. Meth. Phys. Res. Sect. B 265(1), 414–417 (2007)\nAbdou, E.S., Nagy, K.S., Elsabee, M.Z.: Extraction and characterization of chitin and chitosan from local sources. Bioresour. Technol. 99(5), 1359–1367 (2008)\nShushizadeh, M.R., Pour, E.M., Zare, A., Lashkari, Z.: Persian gulf β-chitin extraction from sepia pharaonis sp. cuttlebone and preparation of its derivatives. Bioact. Carbohydr. Diet. Fibre 6(2), 133–142 (2015)\nSonaje, K., Chen, Y.-J., Chen, H.-L., Wey, S.-P., Juang, J.-H., Nguyen, H.-N., Hsu, C.-W., Lin, K.-J., Sung, H.-W.: Enteric-coated capsules filled with freeze-dried chitosan\u002Fpoly (γ-glutamic acid) nanoparticles for oral insulin delivery. Biomaterials 31(12), 3384–3394 (2010)\nWruss, J., Waldenberger, G., Huemer, S., Uygun, P., Lanzerstorfer, P., Müller, U., Höglinger, O., Weghuber, J.: Compositional characteristics of commercial beetroot products and beetroot juice prepared from seven beetroot varieties grown in Upper Austria. J. Food Compos. Anal. 42, 46–55 (2015)\nLópez, N., Puértolas, E., Condón, S., Raso, J., Alvarez, I.: Enhancement of the extraction of betanine from red beetroot by pulsed electric fields. J. Food Eng. 90(1), 60–66 (2009)\nDe Azeredo, H.M.C., Pereira, A.C., De Souza, A.C.R., Gouveia, S.T., Mendes, K.C.B.: Study on efficiency of betacyanin extraction from red beetroots. Int. J. Food Sci. Technol. 44(12), 2464–2469 (2009)\nKovačević, S.Z., Tepić, A.N., Jevrić, L.R., Podunavac-Kuzmanović, S.O., Vidović, S.S., Šumić, Z.M., Ilin, Ž.M.: Chemometric guidelines for selection of cultivation conditions influencing the antioxidant potential of beetroot extracts. Comput. Electron. Agric. 118, 332–339 (2015)\nMarszałek, K., Krzyżanowska, J., Woźniak, Ł., Skąpska, S.: Kinetic modelling of polyphenol oxidase, peroxidase, pectin esterase, polygalacturonase, degradation of the main pigments and polyphenols in beetroot juice during high pressure carbon dioxide treatment. LWT-Food Sci. Technol. 85, 412–417 (2016)\nSawicki, T., Bączek, N., Wiczkowski, W.: Betalain profile, content and antioxidant capacity of red beetroot dependent on the genotype and root part. J. Funct. Foods 27, 249–261 (2016)\nZvitov, R., Nussinovitch, A.: Low DC electrification of gel-plant tissue ‘sandwiches’ facilitates extraction and separation of substances from Beta vulgaris beetroots. Food Hydrocolloids 19(6), 997–1004 (2005)\nTran, T.N., Athanassiou, A., Basit, A., Bayer, I.S.: Starch-based bio-elastomers functionalized with red beetroot natural antioxidant. Food. Chem. 216, 324–333 (2017)\nWootton-Beard, P.C., Ryan, L.: A beetroot juice shot is a significant and convenient source of bioaccessible antioxidants. J. Funct. Foods 3(4), 329–334 (2011)\nClifford, T., Howatson, G., West, D.J., Stevenson, E.J.: The potential benefits of red beetroot supplementation in health and disease. Nutrients 7(4), 2801–2822 (2015)\nRaikos, V., McDonagh, A., Ranawana, V., Duthie, G.: Processed beetroot (Beta vulgaris L.) as a natural antioxidant in mayonnaise: effects on physical stability, texture and sensory attributes. Food Sci. Hum. Wellness 5(4), 191–198 (2016)\nBazaria, B., Kumar, P.: Effect of whey protein concentrate as drying aid and drying parameters on physicochemical and functional properties of spray dried beetroot juice concentrate. Food Biosci. 14, 21–27 (2016)\nJajja, A., Sutyarjoko, A., Lara, J., Rennie, K., Brandt, K., Qadir, O., Siervo, M.: Beetroot supplementation lowers daily systolic blood pressure in older, overweight subjects. Nutr. Res. 34(10), 868–875 (2014)\nYounes, I., Rinaudo, M.: Chitin and chitosan preparation from marine sources. Structure, properties and applications. Mar. Drugs 13(3), 1133–1174 (2015)\nde Queiroz Antonino, R.S.C.M., Fook, Lia, de Oliveira Lima, B.R.P., de Farias Rached, V.A., Lima, R.Í., da Silva Lima, E.P.N., Peniche Covas, R.J., Lia, C.A., Fook, M.V.: Preparation and characterization of chitosan obtained from shells of shrimp (Litopenaeus vannamei Boone). Mar. Drugs 15(5), 141 (2017)\nDomszy, J.G., Roberts, G.A.: Evaluation of infrared spectroscopic techniques for analysing chitosan. Macromol. Chem. Phys. 186(8), 1671–1677 (1985)\nKousalya, G., Gandhi, M.R., Viswanathan, N., Meenakshi, S.: Preparation and metal uptake studies of modified forms of chitin. Int. J. Biol. Macromol. 47(5), 583–589 (2010)\nLonghinotti, E., Pozza, F., Furlan, L., Sanchez, M.d.N.d.M., Klug, M., Laranjeira, M., Fávere, V.T.: Adsorption of anionic dyes on the biopolymer chitin. J. Braz. Chem. Soc. 9(5), 435–440 (1998)\nAmini, M., Younesi, H., Bahramifar, N., Lorestani, A.A.Z., Ghorbani, F., Daneshi, A., Sharifzadeh, M.: Application of response surface methodology for optimization of lead biosorption in an aqueous solution by Aspergillus niger. J. Hazard. Mater. 154(1), 694–702 (2008)\nNgah, W.W., Endud, C., Mayanar, R.: Removal of copper (II) ions from aqueous solution onto chitosan and cross-linked chitosan beads. React. Funct. Polym. 50(2), 181–190 (2002)\nSankararamakrishnan, N., Dixit, A., Iyengar, L., Sanghi, R.: Removal of hexavalent chromium using a novel cross linked xanthated chitosan. Bioresour. Technol. 97(18), 2377–2382 (2006)\nKumar, M., Tripathi, B.P., Shahi, V.K.: Crosslinked chitosan\u002Fpolyvinyl alcohol blend beads for removal and recovery of Cd (II) from wastewater. J. Hazard. Mater. 172(2), 1041–1048 (2009)",{"VOID":1148},"10.1007\u002Fs12649-017-0086-8","2024-09-05T02:00:48.586+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs12649-017-0086-8",[1152,1167,1180],{"id":1153,"sortIndex":23,"researcher":22,"roles":1154,"affiliations":1155,"properties":1164,"displayName":1166,"givenName":22,"familyName":22},"fc674119-e335-4cca-a8a5-35eb1307a2cf",[193],[1156],{"id":1157,"sortIndex":23,"affiliation":1158,"properties":22},"5896c6c6-cf7e-4ee6-b4e2-29dab46819dc",{"id":1157,"createTime":22,"updateTime":22,"relativeEntities":1159,"slug":22,"properties":1160,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1163,"statistic":22},[],{"title":1161},{"EN":1162},"ACECR Institute of Higher Education (Isfahan Branch), Isfahan, Iran",[],{"title":1165},{"VI":1166},"Mohammad Sadegh Tanabtabzadeh",{"id":1168,"sortIndex":208,"researcher":22,"roles":1169,"affiliations":1170,"properties":1177,"displayName":1179,"givenName":22,"familyName":22},"f1ae777c-4493-42de-9bea-7ca86a1ee04c",[193],[1171],{"id":1157,"sortIndex":23,"affiliation":1172,"properties":22},{"id":1157,"createTime":22,"updateTime":22,"relativeEntities":1173,"slug":22,"properties":1174,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1176,"statistic":22},[],{"title":1175},{"EN":1162},[],{"title":1178},{"VI":1179},"Vahid 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Golshirazi",{"url":1150,"publisher":1194,"properties":1244},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1195,"slug":10,"properties":1196,"entityType":20,"verifyStatus":21,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":23,"subjectFields":1200,"manageAffiliations":1213,"indexDatabases":1224,"url":22,"thumbnailPath":22,"statistic":1239,"gsStatistic":22,"type":162,"analyzePriority":22},[],{"issn":1197,"title":1198,"eissn":1199},{"VOID":15},{"EN":17},{"VOID":13},[1201,1205,1209],{"id":26,"createTime":22,"updateTime":22,"relativeEntities":1202,"label":1203,"description":1204,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":29},{},{"id":32,"createTime":22,"updateTime":22,"relativeEntities":1206,"label":1207,"description":1208,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":35},{},{"id":38,"createTime":22,"updateTime":22,"relativeEntities":1210,"label":1211,"description":1212,"parentId":22,"standard":22,"scholarHubFieldId":22},[],{"EN":41},{},[1214,1219],{"id":45,"createTime":22,"updateTime":22,"relativeEntities":1215,"slug":22,"properties":1216,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1218,"statistic":22},[],{"title":1217},{"EN":49},[],{"id":52,"createTime":22,"updateTime":22,"relativeEntities":1220,"slug":22,"properties":1221,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1223,"statistic":22},[],{"title":1222},{"EN":56},[58],[1225,1232],{"id":61,"indexDatabase":1226,"url":74,"indexYears":22,"academicFieldIds":1231,"indexDatabaseRanking":22},{"id":63,"createTime":22,"updateTime":22,"relativeEntities":1227,"label":1228,"description":1229,"key":70,"publicationTags":1230,"standard":22},[],{"EN":66,"VI":66},{"EN":68,"VI":69},[72,73],[76],{"id":78,"indexDatabase":1233,"url":89,"indexYears":90,"academicFieldIds":1238,"indexDatabaseRanking":95},{"id":80,"createTime":22,"updateTime":22,"relativeEntities":1234,"label":1235,"description":1236,"key":86,"publicationTags":1237,"standard":22},[],{"EN":83,"VI":83},{"EN":83,"VI":85},[88],[92,93,94],{"impactFactor":23,"impactFactorByYear":1240,"i10Index":109,"i10IndexLast5Year":110,"totalPublication":111,"totalPublicationByYear":1241,"totalCitation":128,"totalCitationByYear":1242,"totalCitationPerPublication":145,"totalCitationPerPublicationByYear":1243,"hindexLast5Year":161,"hindex":161},{"2012":98,"2013":99,"2014":100,"2015":101,"2016":102,"2017":103,"2018":102,"2019":104,"2020":105,"2021":106,"2022":107,"2023":108},{"2010":113,"2011":114,"2012":115,"2013":116,"2014":117,"2015":118,"2016":119,"2017":120,"2018":121,"2019":122,"2020":123,"2021":124,"2022":125,"2023":126,"2024":127},{"2010":130,"2011":131,"2012":132,"2013":133,"2014":134,"2015":135,"2016":136,"2017":137,"2018":138,"2019":139,"2020":140,"2021":141,"2022":142,"2023":143,"2024":144},{"2010":147,"2011":148,"2012":149,"2013":150,"2014":151,"2015":152,"2016":153,"2017":154,"2018":155,"2019":156,"2020":157,"2021":150,"2022":158,"2023":159,"2024":160},{"pages":1245,"volume":1247},{"VOID":1246},"641-653",{"VOID":1248},"10","2017-09-18",2017,"ERROR_IN_GET_PLATFORM_ID","2026-08-16T08:29:20.916+00:00",[95,72],{"id":1255,"createTime":1256,"updateTime":1257,"relativeEntities":1258,"slug":1259,"properties":1260,"entityType":185,"verifyStatus":292,"verifyTime":1272,"verifyNote":294,"languages":22,"translateLanguages":22,"viewCount":23,"primaryUrl":1273,"fullTextUrl":22,"authors":1274,"publicationType":220,"publisherRelationship":1375,"citationCount":23,"citationInfo":1426,"publishDate":1429,"publishYear":1427,"citationAnalyzeStatus":21,"lastCitationAnalyze":1430,"indexDatabases":1431,"openAccess":22,"references":22,"isForceReanalyzing":275},"8bc85eaf-b6b9-4d6c-8150-2d2d886c5d65","2024-04-07T09:51:04.312+00:00","2026-07-26T17:53:06.996+00:00",[],"Comparison-of-Waste-to-Energy-Processes-by-Means-of-Life-Cycle-Analysis-Principles-regarding-the-Global-Warming-Potential-Impact-Applied-Case-Studies-in-Greece-France-and-Germany",{"abstract":1261,"title":1263,"gsPaper":1265,"keywords":1267,"references":1268,"doi":1270},{"EN":1262},"\nThis paper focuses on the comparison of waste-to-energy processes in terms of life cycle analysis. The processes compared are the municipal solid waste (MSW) direct combustion (known as mass burning) and the combustion of refused derived fuel (RDF) produced after separation of recyclable materials in a mechanical–biological treatment (MBT) facility. The basis of comparison for the two processes in this paper is their global warming potential (GWP). In specific, three European countries (Greece, Germany and France) were chosen as case studies. Their selection was based on their electricity mix characteristics and the general population culture toward waste management practices, as depicted in the waste composition. The waste composition applied for each country is the average estimated by local statistics and Eurostat data. The comparison between the two methods of incineration leads to the conclusion that the incineration of RDF has less impact on the greenhouse effect than the incineration of MSW. A sensitivity analysis based on different setup configurations for paper and plastic separation in the MBT plant was carried out. The results validate the priorities of waste management hierarchy, since the scenarios with high separation of valuable materials, such as paper and plastics, were environmentally friendlier in terms of GWP impact. The sensitivity analysis based on the change of the recovering rate shows an approximately linear relation of inverse proportion between recovering rate and total environmental impact. Furthermore, the increase in electricity efficiency plays a significant role in the greenhouse effect for the Greek scenario, while its respective effectiveness for the French scenario is lower. Since the final choice between the two processes relies solely upon the needs that should be met on specific occasions, the modeling has been carried out through life cycle analysis principles, in order to provide a decision-making tool for the selection of the most appropriate waste-to-energy technology according to the criteria that be set.",{"EN":1264},"Comparison of Waste-to-Energy Processes by Means of Life Cycle Analysis Principles regarding the Global Warming Potential Impact: Applied Case Studies in Greece, France and Germany",{"VOID":1266},"[\"8664615713223907041\"]",{"EN":180},{"VOID":1269},"European Commission: Directive EC 2008\u002F98 http:\u002F\u002Fec.europa.eu\u002Fenvironment\u002Fwaste\u002Fframework\u002F (2008). Accessed on 30 Aug 2013\nRigamonti, L., Grosso, M., Giugliano, M.: Life Cycle assessment for optimizing the level of separated collection in integrated MSW management systems. Waste Manag. 29(2), 934–944 (2009)\nStehlík, P.: Up-to-date technologies in waste to energy field. Rev. Chem. Eng. 28, 223–242 (2012)\nCEN\u002FTC 343 2006, CEN\u002FTS 15359:2006 Solid recovered fuels—specifications and classes, European Committee for Standardisation, Technical Committee CEN\u002FTC 343\nEuropean Recovered Fuel Organization (ERFO). http:\u002F\u002Ferfo.info\u002F (2010). Accessed 7 Mar 2015\nEuropean Commission: Energy and Environmental Statistics. Published by Eurostat. http:\u002F\u002Fepp.eurostat.ec.europa.eu\u002Fportal\u002Fpage\u002Fportal\u002Feurostat\u002Fhome\u002F. Accessed on 5 Sept 2013\nAssamoi, B., Lawryshyn, Y.: The environmental comparison of landfilling vs. incineration of MSW accounting for waste diversion. Waste Manag. 32(5), 1019–1030 (2012)\nYang, N., Zhang, H., Chen, M., Shao, L.-M., He, P.-J.: Greenhouse gas emissions from MSW incineration in China: impacts of waste characteristics and energy recovery. Waste Manag. 32, 2552–2560 (2012)\nConsonni, S., Giugliano, M., Grosso, M.: Alternative strategies for energy recovery from municipal solid waste. Part A: mass and energy balances. Waste Manag. 25, 123–135 (2005)\nEkvall, T., Assefa, G., Bjorklund, A., Ericksson, O., Finnveden, G.: What life cycle does and does not do in assessments of waste management. Waste Manag. 27, 986–996 (2007)\nLiamsanguan, Ch., Gheewala, HSh: LCA: a decision support tool for environmental assessment of MSW management systems. J. Environ. Manag. 87(1), 132–138 (2008)\nDe Feo, G., Malvano, C.: The use of LCA in selecting the best MSW management system. Waste Manag. 29(6), 1901–1915 (2009)\nCherubini, F., Bargigli, S., Ulgiati, S.: Life cycle assessment (LCA) of waste management strategies: landfilling, sorting plant and incineration. Energy 34, 2116–2123 (2009)\nBlengini, G.A., Fantoni, M., Busto, M., Genon, G., Zanetti, M.C.: Participatory approach, acceptability and transparency of waste management LCAs: case studies of Torino and Cuneo. Waste Manag. 32, 1712–1721 (2012)\nButtol, P., Masoni, P., Bonoli, A., Goldoni, S., Belladonna, V., Cavazzutti, C.: LCA of integrated MSW management systems: case study of the Bologna District. Waste Manag. 27, 1059–1070 (2007)\nCherubini, F., Bargigli, S., Ulgiati, S.: Life cycle assessment of urban waste management: energy performances and environmental impacts. The case of Rome, Italy. Waste Manag. 28, 2552–2564 (2008)\nMiliūtė, J.: Application of life cycle assessment in optimization of municipal waste management systems: the case of Lithuania. Waste Manag. Res. 28, 298–308 (2010)\nSong, Q., Wang, Z., Li, J.: Environmental performance of municipal solid waste strategies based on LCA method: a case study of Macau. J. Clean. Prod. 57, 92–100 (2013)\nWittmaier, M., Langer, S., Sawilla, B.: Possibilities and limitations of life cycle assessment (LCA) in the development of waste utilization systems—applied examples for a region in Northern Germany. Waste Manag. 29(5), 1732–1738 (2009)\nWoon, K.S., Lo, M.C.: Greenhouse gas accounting of the proposed landfill extension and advanced incineration facility for municipal solid waste management in Hong Kong. Sci. Total Environ. 458–460, 499–507 (2013)\nCimpan, C., Wenzel, H.: Energy implications of mechanical-biological treatment compared to direct waste-to-energy. Waste Manag. 33, 1648–1658 (2013)\nBjarnadóttir, H., Friðriksson, G., Johnsen, T., Sletsen, H.: Guidelines for the use of LCA in the waste management sector. Published by Nordtest. http:\u002F\u002Finfohouse.p2ric.org\u002Fref\u002F37\u002F36469.pdf. Accessed 20 Jan 2014\nISO 14041-14044. Environmental Management. Life Cycle Assessment. Requirements and Guidelines (2006)\nSkovgaard, M., Hedal, N., Villanueva, A, Andersen, F.M., Larsen, H.: Municipal waste management and greenhouse gases. Publishing in ETC\u002FRWM working paper. http:\u002F\u002Fwww.risoe.dk\u002Frispubl\u002Fart\u002F2008_27.pdf (2008). Accessed 10 Jan 2014\nConsonni, S., Giugliano, M., Grosso, M.: Alternative strategies for energy recovery from municipal solid waste: part B: emission and cost estimates. Waste Manag. 25(2), 137–148 (2005)\nEuropean Commission, 2007. Commission Decision of 18 July 2007 establishing guidelines for the monitoring and reporting of greenhouse gas emissions pursuant to Directive 2003\u002F87\u002FEC of the European Parliament and of the Council (notified under document number C(2007) 3416)\nIntergovernmental Panel on Climate Change (IPCC). http:\u002F\u002Fwww.ipcc.ch (2007)\nScipioni, A., Mazzi, A., Niero, M., Boatto, T.: LCA to choose among alternative design solutions: the case study of a new Italian incineration line. Waste Manag. 29(9), 2462–2474 (2009)\nHellenic Ministerial Decision (HMD). 50910\u002F2727\u002F2003 (Government Gazette1909\u002F22.12.2003), Rules and Terms for the Solid Waste Management, National and Regional Management Plan; 2003 [in Greek]\nKoufodimos, G., Samaras, Z.: Waste management options in southern Europe using field and experimental data. Waste Manag. 22, 47–59 (2002)\nMinoglou, M., Komilis, D.: Optimizing the treatment and disposal of municipal solid wastes using mathematical programming—a case study in a Greek region. Resour. Conserv. Recycl. 80, 46–57 (2013)\nBeylot, A., Villeneuve, J.: Environmental impacts of residual Municipal Solid Waste Incineration: a comparison of 110 French incinerators using a life cycle approach. Waste Manag. 33(12), 2781–2788 (2013)\nMuhle, S., Balsam, I., Cheeseman, C.R.: Comparison of carbon emissions associated with municipal solid waste management in Germany and the UK. Resour. Conserv. Recycl. 54, 793–801 (2010)\nReimann, D.O.: CEWEP Energy Reports III (status 2007–2010): results of Specific Data for Energy, R1 Plant Efficiency Factors and NCV of 314 European W-t-E Plants. CEWEP, Bamberg (2012)\nGrosso, M., Motta, A., Rigamonti, L.: Efficiency of energy recovery from waste incineration in the light of the new Waste Framework Directive. Waste Manag. 30, 1238–1243 (2010)\nEuropean Commission, 2006. Reference Document on the Best Available Techniques for Waste Incineration. http:\u002F\u002Feippcb.jrc.ec.europa.eu\u002Freference Accessed Feb 2014\nConsonni, S., Vigano, F.: Waste gasification vs. conventional Waste-To-Energy: a comparative evaluation of two commercial technologies. Waste Manag. 32, 663–666 (2012)\nIPCC 2006: IPCC Guidelines for National Greenhouse Gas Inventories. In: Waste, vol. 5 Available from World Wide Web: http:\u002F\u002Fwww.ipcc-nggip.iges.or.jp\u002Fpublic\u002Fgp\u002Fenglish. Accessed Feb 2014\nAstrup, T., Moller, J., Fruergaard, J.: Incineration and co-combustion of waste: accounting of greenhouse gases and global warming contributions. Waste Manag. Res. 27(8), 789–799 (2009)\nAEA: UK Greenhouse Gas Inventory, 1990–2004: Annual Report for Submission Under the Framework Convention on Climate Change. DEFRA, UK (2006)\nVelis, C.A., Longhurst, P.J., Drew, G.H., Smith, R., Pollard, S.J.T.: Biodrying for mechanical-biological treatment of wastes: A review of process science and engineering. Bioresour. Technol. 100(11), 2747–2761 (2009)\nMerrild, H., Damgaard, A., Christensen, T.H.: Recycling of paper: accounting of greenhouse gases and global warming contributions. Waste Manag. Res. 27, 746–753 (2009)\nAstrup, T., Fruergaard, T., Christensen, T.H.: Recycling of plastic: accounting of greenhouse gases and global warming contributions. Waste Manag. Res. 27, 763–772 (2009)\nPrognos in Co-operation with institute of Environmental research university of Dortmund: Resource savings and CO2 reduction potential in waste management in Europe and the possible contribution to the CO2 reduction target in 2020, Final report. http:\u002F\u002Fwww.prognos.com\u002Ffileadmin\u002Fpdf\u002Fpublikationsdatenbank\u002FSUMMARY_Resource_savingsand_CO2_reduction_potentials_200810.pdf (2008). Accessed on 30 Aug 2013\nDamgaard, A., Larsen, A.W., Christensen, T.H.: Recycling of metals: accounting of greenhouse gases and global warming contributions. Waste Manag. Res. 27, 773–780 (2009)\nLarsen, A.W., Merrild, H., Christensen, T.H.: Recycling of glass: accounting of greenhouse gases and global warming contributions. Waste Manag. Res. 27, 754–762 (2009)\nHeyer, K.-U., Hupe, K., Stegmann, R.: Methane emissions from MBT landfills. Waste Manag. 33, 1853–1860 (2013)\nHarborth, P., Fuss, R., Munnich, K., Flessa, H., Fricke, K.: Spatial variability of nitrous oxide and methane emissions from an MBT landfill in operation: strong N2O hotspots at the working face. Waste Manag. 33, 2099–2107 (2013)\nObersteiner, G., Binner, E., Mostbauer, P., Salhofer, S.: Landfill modeling in LCA—a contribution based on empirical data. Waste Manag. 27(8), 58–74 (2007)\nDevera, S.A., Swarbricka, G.E., Stuetza, R.M.: Passive drainage and biofiltration of landfill gas: Australian field trial. Waste Manag. 27, 277–286 (2006)\nManfredi, S., Tonini, D., Christensen, T.H., Scharff, H.: Landfilling of waste: accounting of greenhouse gases and global warming contributions. Waste Manag. Res. 27, 825–836 (2009)\nKong, D., Shan, J., Iacoboni, M., Maguin, S.R.: Evaluating greenhouse gas impacts of organic waste management options using life cycle assessment. Waste Manag. Res. 30(8), 800–812 (2012)\nSeventeenth Ordinance on the Implementation of the Federal Immission Control Act (Ordinance on Waste Incineration and Co-Incineration-17. BlmSchV), of November 1990 (Federal Law Gazette I p. 2545, 2832) corrected on 14 August 2003 (Federal Law Gazette I p. 1633)\nCEN\u002FTS 15440 Technical Specification. Solid recovered fuels-Method for the determination of biomass content (2006)",{"VOID":1271},"10.1007\u002Fs12649-015-9367-2","2024-06-25T15:01:31.787+00:00","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs12649-015-9367-2",[1275,1298,1313,1328,1343,1356],{"id":1276,"sortIndex":23,"researcher":22,"roles":1277,"affiliations":1278,"properties":1295,"displayName":1297,"givenName":22,"familyName":22},"4a82e39b-c978-4162-addf-edc63ba098bf",[193],[1279,1287],{"id":1280,"sortIndex":23,"affiliation":1281,"properties":22},"4416dbaf-d511-4444-b43d-53c93835f8b1",{"id":1280,"createTime":22,"updateTime":22,"relativeEntities":1282,"slug":22,"properties":1283,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1286,"statistic":22},[],{"title":1284},{"VI":1285},"Centre for Research and Technology Hellas\u002FChemical Process and Energy Resources Institute (CERTH\u002FCPERI), Athens, Greece",[],{"id":1288,"sortIndex":23,"affiliation":1289,"properties":22},"818f46cc-6862-470a-86fe-0fb13d87ff6c",{"id":1288,"createTime":22,"updateTime":22,"relativeEntities":1290,"slug":22,"properties":1291,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1294,"statistic":22},[],{"title":1292},{"VI":1293},"National Technical University of Athens\u002FLaboratory of Steam Boilers and Thermal Plants (NTUA\u002FLSBTP), Athens, Greece",[],{"title":1296},{"VI":1297},"Dimitrios-Sotirios Kourkoumpas",{"id":1299,"sortIndex":208,"researcher":22,"roles":1300,"affiliations":1301,"properties":1308,"displayName":1310,"givenName":22,"familyName":22},"aa498de1-b916-4f1a-8b38-9a1ee216782d",[193],[1302],{"id":1288,"sortIndex":23,"affiliation":1303,"properties":22},{"id":1288,"createTime":22,"updateTime":22,"relativeEntities":1304,"slug":22,"properties":1305,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1307,"statistic":22},[],{"title":1306},{"VI":1293},[],{"title":1309,"gsAuthor":1311},{"VI":1310},"Sotirios Karellas",{"VOID":1312},"[\"9LfQgVsAAAAJ\"]",{"id":1314,"sortIndex":435,"researcher":22,"roles":1315,"affiliations":1316,"properties":1325,"displayName":1327,"givenName":22,"familyName":22},"0f6ba4c7-acd6-455d-9254-cf5ede61003d",[193],[1317],{"id":1318,"sortIndex":23,"affiliation":1319,"properties":22},"b9c7cdb8-d65f-49b4-b687-580a9ceda212",{"id":1318,"createTime":22,"updateTime":22,"relativeEntities":1320,"slug":22,"properties":1321,"entityType":22,"verifyStatus":22,"verifyTime":22,"verifyNote":22,"languages":22,"translateLanguages":22,"viewCount":22,"url":22,"parentIds":1324,"statistic":22},[],{"title":1322},{"VI":1323},"Waste Applied Technologies and Transport S.A. 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a natural biopolymer and abundant by-product, is a particularly promising feedstock for carbon-based materials and a potentially sustainable alternative to phenolic resins, which are typically derived from crude oil. The source and method used to isolate lignin have a large impact on the thermal properties of the polymer, and can affect resultant materials prepared from lignin. Previous investigations into lignin characterisation often utilise a variety of feedstocks and isolation methods, which can make robust comparisons challenging. We present a systematic investigation into the chemical composition of lignins extracted using an identical Organosolv isolation method but from different biomass feedstocks: hemp hurds, eucalyptus chips, flax straw, rice husk and pine. We show how the aromatic structure of lignin can affect the thermal behaviour of the polymer, which correlates to the structure of resulting carbons. Carbons from lignins with a high syringyl unit content display a pronounced foaming behaviour which, on activation, results in a high-surface area material with hierarchical porosity. \n                \n                  \n                    \n                  \n                \n              ",{"EN":1442},"Influence of Aromatic Structure on the Thermal Behaviour of Lignin",{"VOID":1444},"[\"2102317640533643998\"]",{"VOID":1446},"Dutta, S., Wu, K.C.-W., Saha, B.: Emerging strategies for breaking the 3D amorphous network of lignin. Catal. Sci. Technol. 4, 3785–3799 (2014)\nSingh, J., Suhag, M., Dhaka, A.: Augmented digestion of lignocellulose by steam explosion, acid and alkaline pretreatment methods: a review. Carbohydr. Polym. 117, 624–631 (2015)\nSouto, F., Calado, V., Pereira, N.: Lignin-based carbon fiber: a current overview. Mater. Res. Express 5, 072001 (2018)\nChatterjee, S., Clingenpeel, A., McKenna, A., Rios, O., Johs, A.: Synthesis and characterization of lignin-based carbon materials with tunable microstructure. RSC Adv. 4, 4743–4753 (2014)\nRosas, J.M., Berenguer, R., Valero-Romero, M.J., Rodríguez-Mirasol, J., Cordero, T.: Preparation of different carbon materials by thermochemical conversion of lignin. Front. Mater. 1(29), 1–17 (2014)\nRodríguez, J.J., Cordero, T., Rodríguez-Mirasol, J.: Prod. biofuels chem. from lignin, Fang, Z., Smith, R.L. (eds.) (Springer, Singapore, 2016), pp. 217–262\nZhang, W., Zhao, M., Liu, R., Wang, X., Lin, H.: Hierarchical porous carbon derived from lignin for high performance supercapacitor. Colloids Surf. A 484, 518–527 (2015)\nJeon, J.-W., Zhang, L., Lutkenhaus, J.L., Laskar, D.D., Lemmon, J.P., Choi, D., Nandasiri, M.I., Hashmi, A., Xu, J., Motkuri, R.K., Fernandez, C.A., Liu, J., Tucker, M.P., McGrail, P.B., Yang, B., Nune, S.K.: Controlling porosity in lignin-derived nanoporous carbon for supercapacitor applications. ChemSusChem 8, 428–432 (2014)\nHu, S., Lo Hsieh, Y.: Lignin derived activated carbon particulates as an electric supercapacitor: carbonization and activation on porous structures and microstructures. RSC Adv. 7, 30459–30468 (2017)\nGuo, N., Li, M., Sun, X., Wang, F., Yang, R.: Enzymatic hydrolysis lignin derived hierarchical porous carbon for supercapacitors in ionic liquids with high power and energy densities. Green Chem. 19, 2595–2602 (2017)\nZhang, H., Jia, D., Yang, Z., Yu, F., Su, Y., Wang, D., Shen, Q.: Alkaline lignin derived porous carbon as an efficient scaffold for lithium-selenium battery cathode. Carbon 122, 547–555 (2017)\nYu, F., Li, Y., Jia, M., Nan, T., Zhang, H., Zhao, S., Shen, Q.: Elaborate construction and electrochemical properties of lignin-derived macro-\u002Fmicro-porous carbon-sulfur composites for rechargeable lithium-sulfur batteries: the effect of sulfur-loading time. J. Alloys Compd. 709, 677–685 (2017)\nXi, Y., Yang, D., Qiu, X., Wang, H., Huang, J., Li, Q.: Renewable lignin-based carbon with a remarkable electrochemical performance from potassium compound activation. Ind. Crops Prod. 124, 747–754 (2018)\nSangchoom, W., Mokaya, R.: Valorization of lignin waste: carbons from hydrothermal carbonization of renewable lignin as superior sorbents for CO2 and hydrogen storage. ACS Sustain. Chem. Eng. 3, 1658–1667 (2015)\nHao, W., Björnerbäck, F., Trushkina, Y., Oregui Bengoechea, M., Salazar-Alvarez, G., Barth, T., Hedin, N.: High-performance magnetic activated carbon from solid waste from lignin conversion processes. 1. Their use as adsorbents for CO2. ACS Sustain. Chem. Eng. 5, 3087–3095 (2017)\nChatterjee, S., Saito, T.: Lignin-derived advanced carbon materials. ChemSusChem 8, 3941–3958 (2015)\nEffendi, A., Gerhauser, H., Bridgwater, A.V.: Production of renewable phenolic resins by thermochemical conversion of biomass: a review. Renew. Sustain. Energy Rev. 12, 2092–2116 (2008)\nSimitzis, J., Sfyrakis, J.: Pyrolysis of lignin biomass-novolac resin for the production of polymeric carbon adsorbents. J. Anal. Appl. Pyrol. 26, 37–52 (1993)\nSimitzis, J., Sfyrakis, J.: Activated carbon from lignocellulosic biomass-phenolic resin. J. Appl. Polym. Sci. 54, 2091–2099 (1994)\nCalvo-Flores, F.G., Dobado, J.A.: Lignin as renewable raw material. ChemSusChem 3, 1227–1235 (2010)\nCarrott, P.J.M., Suhas, M.L., Carrott, M.R., Guerrero, C.I., Delgado, L.A.: Reactivity and porosity development during pyrolysis and physical activation in CO2 or steam of kraft and hydrolytic lignins. J. Anal. Appl. Pyrol. 82, 264–271 (2008)\nMonteil-Rivera, F., Phuong, M., Ye, M., Halasz, A., Hawari, J.: Isolation and characterization of herbaceous lignins for applications in biomaterials. Ind. Crops Prod. 41, 356–364 (2013)\nLaskar, D.D., Yang, B., Wang, H., Lee, J.: Pathways for biomass-derived lignin to hydrocarbon fuels. Biofuels, Bioprod. Biorefin. 7, 602–626 (2013)\nGlasser, W. G.: Classification of lignin according to chemical and molecular structure. ACS Symp. Ser. 742, 216–238 (2000)\nTejado, A., Peña, C., Labidi, J., Echeverria, J.M., Mondragon, I.: Physico-chemical characterization of lignins from different sources for use in phenol-formaldehyde resin synthesis. Bioresour. Technol. 98, 1655–1663 (2007)\nWang, S., Wang, K., Liu, Q., Gu, Y., Luo, Z., Cen, K., Fransson, T.: Comparison of the pyrolysis behavior of lignins from different tree species. Biotechnol. 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