Revelation of high-adsorption-performance activated carbon for removal of fluoroquinolone antibiotics from water

Biomass Conversion and Biorefinery - Tập 14 Số 2 - Trang 2585-2599 - 2024
Jan Bednárek1, Lenka Matějová2, Ivan Koutník2, Martina Vráblová2, Gerardo J. F. Cruz3, Tomáš Strašák4, Pavel Šiler5, Jan Hrbáč6,7,2
1VSB-Technical University of Ostrava
2Institute of Environmental Technology, CEET, VSB-Technical University of Ostrava, Ostrava-Poruba, Czech Republic
3Faculdad de Ciencias Agrarias, Departamento de Ingeniería Forestal Y Gestión Ambiental, Universidad Nacional de Tumbes, Tumbes, Perú
4Institute of Chemical Process Fundamentals of CAS v.v.i., Prague 6, Czech Republic
5Faculty of Chemistry, Institute of Materials Science, Brno University of Technology, Brno, Czech Republic
6Department of Analytical Chemistry, Palacky University, Olomouc, Czech Republic
7Institute of Chemistry, Masaryk University, Brno, Czech Republic

Tóm tắt

Từ khóa


Tài liệu tham khảo

Chiang YC, Chaing PC, Huang CP (2001) Effects of pore structure and temperature on VOC adsorption on activated carbon. Carbon 39(4):523–534

Bernal V, Giraldo L, Moreno-Piraján JC (2018) Physicochemical properties of activated carbon: Their effect on the adsorption of pharmaceutical compounds and adsorbate-adsorbent interactions. C 4(4):62

Dias JM, Alvim-Ferraz MCM, Almeida MF, Rivera-Utrilla J, Sanchez-Polo M (2007) Waste materials for activated carbon preparation and its use in aqueous-phase treatment: A review. J Environ Manag 85(4):833–846

González-García P (2018) Activated carbon from lignocellulosics precursors: A review of the synthesis methods, characterization techniques and applications. Renew Sust Energ Rev 82(1):1393–1414

Wong S, Ngadi N, Inuwa IM, Hassan O (2018) Recent advances in applications of activated carbon from biowaste for wastewater treatment: A short review. J Clean Prod 175:361–375

Kümmerer K (2003) Significance of antibiotics in the environment. J Antimicrob Chemother 52(1):5–7

Kim S, Aga DS (2007) Potential ecological and human health impacts of antibiotics and antibiotic-resistant bacteria from wastewater treatment plants. J Toxicol Environ Health B Crit Rev 10(8):559–573

Danner MC, Robertson A, Behrends V, Reiss J (2019) Antibiotic pollution in surface fresh waters: Occurrence and effects. Sci Total Environ 664:793–804

Malakootian M, Yaseri M, Faraji M (2019) Removal of antibiotics from aqueous solutions by nanoparticles: a systematic review and meta-analysis. Environ Sci Pollut Res 26(9):8444–8458

Li FF, Chen LJ, Chen WD, Bao YY, Zheng YH, Huang B, Mu QL, Wen DH, Feng CP (2020) Antibiotics in coastal water and sediments of the East China Sea: Distribution, ecological risk assessment and indicators screening. Mar Pollut Bull 151:110810

Rusu A, Hancu G, Uivarosi V (2015) Fluoroquinolone pollution of food, water and soil, and bacteria resistance. Environ Chem Lett 13(1):21–36

Yu F, Li Y, Han S, Ma J (2016) Adsorptive removal of antibiotics from aqueous solution using carbon materials. Chemosphere 153:365–385

Riaz L, Mahmood T, Khalid A, Rashid A, Siddique MBA, Kamal A, Coyne MS (2018) Fluoroquinolones (FQs) in the environment: A review on their abundance, sorption and toxicity in soil. Chemosphere 191:704–720

Sharma PC, Jain A, Jain S (2009) Fluoroquinolone antibacterials: A review on chemistry, microbiology and therapeutic prospects. Acta Pol Pharm 66(6):587–604

Xu YP, Chen T, Wang Y, Tao H, Liu SY, Shi WX (2015) The occurrence and removal of selected fluoroquinolones in urban drinking water treatment plants. Environ Monit Assess 187(12):729

Chen G, Liu X, Tartakevosky D, Li M (2016) Risk assessment of three fluoroquinolone antibiotics in the groundwater recharge system. Ecotoxicol Environ Saf 133:18–24

González-Pleiter M, Soledad G, Rodea-Palomares I, Leganés F, Rosal R, Boltes K, Marco E, Fernández-Piňas F (2013) Toxicity of five antibiotics and their mixtures towards photosynthetic aquatic organisms: Implications for environmental risk assessment. Water Res 47(6):2050–2064

Sayed M, Khan JA, Shah LA, Shah NS, Khan HM, Rehman F, Khan AR, Khan AM (2016) Degradation of quinolone antibiotic, norfloxacin, in aqueous solution using gamma-ray irradiation. Environ Sci Pollut R 23(13):13155–13168

Ahumada AA, Seeck J, Allemandi D, Manzo RH (1993) The pH/solubility profile of norfloxacin. STP Pharma Sci 3(3):250–253

Yang XF, Xu XP, Wei XY, Wan J, Zhang Y (2019) Biomarker effects in Carassius auratus exposure to ofloxacin, sulfamethoxazole and ibuprofen. Int J Env Res Pub He 16(9):1628

Esposito BR, Capobianco ML, Martelli A, Navacchia ML, Pretali L, Saracino M, Zanelli A, Emmi SS (2017) Advanced water remediation from ofloxacin by ionizing radiation. Radiat Phys Chem 141:118–124

de Souza D, Minetto Dottein E, Giacobbo A, Siqueira Rodrigue MA, de Pinho MN, Bernardes AM (2018) Nanofiltration for the removal of norfloxacin from pharmaceutical effluent. J Environ Chem Eng 6(5):6147–6153

Lin CC, Lin HY, Hsu LJ (2016) Degradation of ofloxacin using UV/H2O2 process in a large photoreactor. Sep Purif Technol 168:57–61

Liu XH, Liu Y, Lu SY, Wang Z, Wang YQ, Zhang GD, Guo XC, Guo W, Zhang TT, Xi BD (2020) Degradation difference of ofloxacin and levofloxacin by UV/H2O2 and UV/PS (persulfate): Efficiency, factors and mechanism. Chem Eng J 385:123987

Pravabathi SL, Saravanakumar K, Mamba G, Muthuraj V (2019) 1D/2D MnWO4 nanorods anchored on g-C3N4 nanosheets for enhanced photocatalytic degradation ofloxacin under visible light irradiation. Colloids Surf 581:123845

Zhang SP, Wang YM, Cao Z, Xu J, Hu J, Huang Y, Cui CZ, Liu HL, Wang HL (2020) Simultaneous enhancements of light-harvesting and charge transfer in UiO-67/CdS/rGO composites toward ofloxacin photo degradation. Chem Eng 381:122771

Nazraz M, Yamini Y, Asiabi H (2019) Chitosan-based sorbent for efficient removal and extraction of ciprofloxacin and norfloxacin from aqueous solutions. Microchim Acta 186(7):459

Liu WF, Zhang J, Zhang CL, Ren L (2011) Sorption of norfloxacin by lotus stalk-based activated carbon and iron-doped activated alumina: Mechanisms, isotherms and kinetics. Chem Eng J 171(2):431–438

Huang LH, Sun YY, Yang T, Li L (2011) Adsorption behaviour of Ni(II) on lotus stalks derived active carbon by phosphoric acid activation. Desalination 268(1–3):12–19

Xie HJ, Liu WF, Zhang J, Zhang CL, Ren L (2011) Sorption of norfloxacin from aqueous solutions by activated carbon developed from Trapa natans husk. Sci China Chem 54(5):835–843

Liu PP, Wang QR, Zheng CL, He C (2017) Sorption of sulfadiazine, norfloxacin, metronidazole and tetracycline by granular activated carbon: Kinetics, mechanisms and isotherms. Water Air Soil Pollut 228(4):129

Wang YB, Lu J, Wu J, Liu Q, Zhang H, Jin S (2015) Adsorptive Removal of Fluoroquinolone Antibiotics Using Bamboo Biochar. Sustainability 7(9):12947–12957

Kong Q, He X, Shu L, Miao MS (2017) Ofloxacin adsorption by activated carbon derived from luffa sponge: Kinetic, isotherm and thermodynamic analysis. Process Saf Environ 112:254–264

Li RN, Wang ZW, Zhao XT, Li X, Xie XY (2018) Magnetic biochar-based manganese oxide composite for enhanced fluoroquinolone antibiotic removal from water. Environ Sci Pollut Res 25(31):31136–31148

Wang Z, Wang GJ, Li WY, Cui Z, Wu JH, Akpinar I, Yu L, He GJ, Hu JQ (2021) Loofah activated carbon with hierarchical structures for high efficiency adsorption of multilevel antibiotic pollutants. Appl Surf Sci 550:149313

Peng XM, Hu FP, Zhang T, Qiu FX, Dai HL (2018) Amine-functionalized magnetic bamboo-based activated carbon adsorptive removal of ciprofloxacin and norfloxacin: A batch and fixed bed column study. Bioresour Technol 249:924–934

Avci A, Inci I, Baylan N (2019) A comparative adsorption study with various adsorbents for the removal of ciprofloxacin hydrochloride from water. Water Air Soil Pollut 230:250

Berges J, Moles S, Ormad MP, Mosteo R, Gomez J (2021) Antibiotics removal from aquatic environments: adsorption of enrofloxacin, trimethoprim, sulfadiazine, and amoxicillin on vegetal powdered activated carbon. Environ Sci Pollut Res 28(7):8442–8452

Darweesh TM, Ahmed MJ (2017) Batch and fixed bed adsorption of levofloxacin on granular activated carbon from date (Phoenix dactylifera L.) stones by KOH chemical activation. Environ Toxicol Pharmacol 50:159–166

Cruz GJF, Pirilä M, Matějová L, Ainassaari K, Solis JL, Fajgar R, Šolcová O, Keiskki RL (2018) Two unconventional precursors to produce ZnCl2-based activated carbon for water treatment applications. Chem Eng Technol 41(8):1649–1659

Cruz GJF, Mondal D, Rimaycuna J, Soukup K, Gómez MM, Solis JL, Lang J (2020) Agrowaste derived biochars impregnated with ZnO for removal of arsenic and lead in water. J Environ Chem Eng 8(3):103800

Cruz GJF, Kuboňová L, Aguirre DY, Matějová L, Peikertová P, Troppová I, Cegmed E, Wach A, Kuśtrowski P, Gómez M, Obalová L (2017) Activated carbons prepared from a broad range of residual agricultural biomasses tested for xylene abatement in the gas phase. ACS Sustain Chem Eng 5(3):2368–2374

Cruz G, Pirilä M, Huuhtanen M, Carrión L, Alvarenga E, Keiskki RL (2012) Production of activated carbon from cocoa (Theobroma cacao) pod husk. J Civil Environment Engg 2(2):1000109

Lagergren S (1898) About the theory of so-called adsorption of soluble substances. Kungliga Svenska Vetenskapsakademiens Handlingar 24(4):1–39

Blanchard G, Maunaye M, Martin G (1984) Removal of heavy metals from waters by means of natural zeolites. Water Res 18(12):1501–1507

Roginsky S, Zeldovich YB (1934) The catalytic oxidation of carbon monoxide on manganese dioxide. Acta Phys Chem USSR 1:554

Elovich SY, Zhabrova GM (1939) Mechanics of the catalytic hydrogenation of ethylene on nickel. I. Kinetics of the process. Zhur Fiz Chim 13(1761):1775

Langmuir I (1918) The adsorption of gases of plane surfaces of glass, mica and platinum. J Am Chem Soc 40(9):1361–1403

Freundlich H (1906) Über die Adsorption in Lösungen. Z Phys Chem 57:385–471

Redlich O, Peterson DL (1959) A useful adsorption isotherm. J Phys Chem 63:1024–1026

Foo KY, Hameed BH (2010) Insights into the modelling of adsorption isotherm systems. Chem Eng J 156(1):2–10

Frisch MJ, Trucks GW, Schlegel HB, Scuseruia GE, Robb MA, Cheeseman JR, Zakrzewski VG, Montgomery JA, Stratmann RE, Burant JC, Pople JA (2004) Gaussian 03, revision B.04 ed, Gaussian, Inc. Wallingford

Lee CT, Yang WT, Parr RG (1988) Development of the Colle-Salvetti correlation-energy formula into a functional of the electron density. Phys Rev B 37:785–789

Becke AD (1993) Density-functional thermochemistry. 3. The role of exact exchange. J Chem Phys 98(7):5648–5652

Aharoni C, Tompkins FC (1970) Kinetics of adsorption and desorption and the Elovich equation. D.D.Eley, H.Pines, P.B.Weisz (Eds.) Advances in Catalysis and Related Subjects, vol. 21, Academic Press, New York 1970), pp. 1–49

Pérez-Marín AB, Aguilar MI, Meseguer VF, Ortuño JF, Sáez J, Lloréns M (2009) Biosorption of chromium (III) by orange (Citrus cinensis) waste: Batch and continuous studies. Chem Eng J 155:1–2

Wu FC, Tseng RL, Juang RS (2009) Characteristics of Elovich equation used for the analysis of adsorption kinetics in dye-chitosan systems. Chem Eng J 150(2–3):366–373

Picin JS, Cadaval TRS, De Pinto LAA, Dotto GL (2017) Adsorption isotherms in liquid phase: Experimental, modelling and interpretations. In: Bonilla-Petriciolet A, Mendoza-Castillo DI, Reinel-Ávila HE (eds) Adsorption processes for water treatment and purification. Springer International Publishing AG, Switzerland, pp 19–51

Al-Ghouti MA, Da’ana D (2020) Guidelines for the use and interpretation of adsorption isotherm modes: A review. J Hazard Mater 393:122383

Wang B, Jiang YS, Li FY, Yang DY (2017) Preparation of biochar by simultaneous carbonization, magnetization and activation for norfloxacin removal in water. Bioresour Technol 233:159–165

Rouquerol J, Llewellyn P, Rouquerol F (2006) Is the BET equation applicable to microporous adsorbents? Stud Surf Sci Catal 160:49–56