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Rev., 95, 69, 10.1021\u002Fcr00033a004\nChatterjee, 2005, Visible light induced photocatalytic degradation of organic pollutants, J. Photochem. Photobiol. C Photochem. Rev., 5, 186, 10.1016\u002Fj.jphotochemrev.2005.09.001\nWu, 2013, Controlled synthesis of Bi2S3\u002FZnS microspheres by an in situ ion-exchange process with enhanced visible light photocatalytic activity, J. Chem. Soc., Dalton Trans., 42, 12980, 10.1039\u002Fc3dt50984b\nShi, 2013, Microwave-assisted synthesis of nano-scale BiVO4 photocatalysts and their excellent visible-light-driven photocatalytic activity for the degradation of ciprofloxacin, Chem. Eng. J., 215–216, 740, 10.1016\u002Fj.cej.2012.10.071\nFujishima, 1972, Electrochemical photolysis of water at a semiconductor electrode, Nature, 238, 37, 10.1038\u002F238037a0\nZou, 2001, Direct splitting of water under visible light irradiation with an oxide semiconductor photocatalyst, Nature, 414, 625, 10.1038\u002F414625a\nKusainova, 2001, Ferroelectric properties and crystal structure of the layered intergrowth phase Bi3Pb2Nb2O11Cl, Chem. Mater., 13, 4731, 10.1021\u002Fcm011145n\nMaile, 2005, Effect pigments - past, present and future, Prog. Org. Coating, 54, 150, 10.1016\u002Fj.porgcoat.2005.07.003\nHenle, 2007, Nanosized BiOX (X = Cl, Br, I) particles synthesized in reverse microemulsions, Chem. Mater., 19, 366, 10.1021\u002Fcm061671k\nZhang, 2008, Generalized one-pot synthesis, characterization, and photocatalytic activity of hierarchical BiOX (X = Cl, Br, I) nanoplate microspheres, J. Phys. Chem. C, 112, 747, 10.1021\u002Fjp077471t\nSu, 2010, Synthesis and catalytic performances of a novel photocatalyst BiOF, Scripta Mater., 62, 345, 10.1016\u002Fj.scriptamat.2009.10.039\nChen, 2010, Photocatalytic study of BiOCl for degradation of organic pollutants under UV irradiation, J. Photochem. Photobiol. Chem., 215, 76, 10.1016\u002Fj.jphotochem.2010.07.026\nShang, 2009, Preparation of BiOBr lamellar structure with high photocatalytic activity by CTAB as Br source and template, J. Hazard Mater., 167, 803, 10.1016\u002Fj.jhazmat.2009.01.053\nChen, 2014, Synthesis of BiOI-TiO2 composite nanoparticles by microemulsion method and study on their photocatalytic activities, Sci. World J., 2014, 1\nCheng, 2013, Tailoring AgI nanoparticles for the assembly of AgI\u002FBiOI hierarchical hybrids with size-dependent photocatalytic activities, J.Mater.Chem.A, 1, 7131, 10.1039\u002Fc3ta10849j\nDi, 2014, Preparation of sphere-like g-C3N4\u002FBiOI photocatalysts via a reactable ionic liquid for visible-light-driven photocatalytic degradation of pollutants, J. Mater. Chem., 2, 5340, 10.1039\u002Fc3ta14617k\nChen, 2010, Titanium dioxide nanomaterials: synthesis, properties, modifications and applications, Chem. Rev., 107, 2891, 10.1021\u002Fcr0500535\nFujishima, 2008, TiO2 photocatalysis and related surface phenomena, Surf. Sci. Rep., 63, 515, 10.1016\u002Fj.surfrep.2008.10.001\nChen, 2010, Semiconductor-based photocatalytic hydrogen generation, Chem. Rev., 110, 6503, 10.1021\u002Fcr1001645\nDiebold, 2003, The surface science of titanium dioxide, Surf. Sci. Rep., 48, 53, 10.1016\u002FS0167-5729(02)00100-0\nLi, 2014, Synthesis of mesoporous TiO2\u002FSiO2 hybrid films as an efficient photocatalyst by polymeric micelle assembly, Chem. Eur J., 20, 6027, 10.1002\u002Fchem.201304689\nOveisi, 2010, Unusual antibacterial property of mesoporous titania films: drastic improvement by controlling surface area and crystallinity, Chem. Asian J., 5, 1978, 10.1002\u002Fasia.201000351\nLi, 2016, Research Update: triblock copolymers as templates to synthesize inorganic nanoporous materials, Apl. Mater., 54, 1\nKite, 2020, Highly effcient photodegradation of 4-nitrophenol over the nano-TiO2 obtained from chemical bath deposition technique, Res. Chem. Intermed., 46, 1255, 10.1007\u002Fs11164-019-04032-7\nCao, 2013, Highly improved visible light photocatalytic activity of BiPO4 through fabricating a novel p–n heterojunction BiOI\u002FBiPO4 nanocomposite, Chem. Eng. J., 228, 482, 10.1016\u002Fj.cej.2013.05.008\nCheng, 2010, One-step synthesis of the nanostructured AgI\u002FBiOI composites with highly enhanced visible-light photocatalytic performances, Langmuir, 26, 6618, 10.1021\u002Fla903943s\nChen, 2012, Bi2O2CO3\u002FBiOI photocatalysts with heterojunctions highly efficient for visible-light treatment of dye-containing wastewater, ACS Appl. Mater. Interfaces, 228, 6760\nLiu, 2011, Low temperature synthesis of δ-Bi2O3 solid spheres and their conversion to hierarchical BiOI nests via the Kirkendall effect, CrystEngComm, 13, 5460, 10.1039\u002Fc1ce05101f\nJiang, 2011, ZnO\u002FBiOI heterostructures: photoinduced charge-transfer property and enhanced visible-light photocatalytic activity, J. Phys. Chem. C, 115, 20555, 10.1021\u002Fjp205925z\nWang, 2008, Visible-light-responsive photocatalysts xBiOBr-(1-x), BiOI. Catal. Commun., 9, 8, 10.1016\u002Fj.catcom.2007.05.014\nLiu, 2012, Synthesis, characterization and photocatalytic performance of novel visible-light-induced Ag\u002FBiOI, Appl. Catal. B Environ., 111–112, 271, 10.1016\u002Fj.apcatb.2011.10.008\nCao, 2012, Novel heterostructured Bi2S3\u002FBiOI photocatalyst: facile preparation, characterization and visible light photocatalytic performance, Dalton Trans., 41, 11482, 10.1039\u002Fc2dt30883e\nMalathi, 2017, A robust visible-light driven BiFeWO6\u002FBiOI nanohybrid with efficient photocatalytic and photoelectrochemical performance, Appl. Surf. Sci., 412, 85, 10.1016\u002Fj.apsusc.2017.03.199\nMalathi, 2018, Rod-on-flake α-FeOOH\u002FBiOI nanocomposite: facile synthesis, characterization and enhanced photocatalytic performance, Colloids Surf. A Physicochem. Eng. Asp., 537, 435, 10.1016\u002Fj.colsurfa.2017.10.036\nZhou, 2017, BiOI-promoted nano-on-micro BiOI-MoS2\u002FCdS system for high-performance on photocatalytic H2 evolution under visible light irradiation, Int. J. Hydrogen Energy, 42, 28337, 10.1016\u002Fj.ijhydene.2017.09.098\nArumugam, 2020, Recent progress on bismuth oxyiodide (BiOI) photocatalyst for environmental remediation, J. Ind. Eng. Chem., 81, 237, 10.1016\u002Fj.jiec.2019.09.013\nKarthikeyan, 2020, Recent advances in semiconductor metal oxides with enhanced methods for solar photocatalytic applications, J. Alloys Compd., 828, 154281, 10.1016\u002Fj.jallcom.2020.154281\nBalachandran, 2012, Superior photocatalytic activity of bimetallic Cd-Ag-ZnO for the degradation of azo dyes under UV light, Emerg. Mater. Res., 1, 157, 10.1680\u002Femr.11.00025\nMuthuvel, 2007, Photoassisted fenton mineralisation of acid violet 7 by heterogeneous Fe(III)-Al2O3 catalyst, Cat.Commun., 8, 981, 10.1016\u002Fj.catcom.2006.10.015\nMuthuvel, 2014, UV-A\u002Fsolar light induced Fenton mineralization of Acid Red 1 using Fe modified bentonite composite, Indian J. Chem., 53A, 672\nKrishnakumar, 2017, Chemically modified amino porphyrin\u002FTiO2 for the degradation of Acid Black 1 under day light illumination, Spectrochim. Acta, Part A, 176, 134, 10.1016\u002Fj.saa.2017.01.019\nKrishnakumar, 2018, Gelatin-assisted g-TiO2\u002FBiOI heterostructure nanocomposites for azo dye degradation under visible light, J. Environ. Chem. Eng., 6, 4282\nWang, 2016, Heterojunctions of p-BiOI nanosheets\u002Fn-TiO2 nanoﬁbers: preparation and enhanced visible-light photocatalytic activity, Materials, 9, 90, 10.3390\u002Fma9020090\nSuppuraj, 2020, Novel Ag–TiO2\u002FZnFe2O4 nanocomposites for effective photocatalytic, electrocatalytic and cytotoxicity applications, J. Nanosci. Nanotechnol., 20, 709, 10.1166\u002Fjnn.2020.16893\nSamantaray, 2003, Effect of anions on the textural and catalytic activity of titania-silica mixed oxide, J. Mater. Sci., 38, 1835, 10.1023\u002FA:1023575607846\nMalathi, 2018, An efficient visible light driven bismuth ferrite incorporated bismuth oxyiodide (BiFeO3\u002FBiOI) composite photocatalytic material for degradation of pollutants, Opt. Mater., 84, 227, 10.1016\u002Fj.optmat.2018.06.067\nHu, 2007, Facile flame synthesis and photoluminescent properties of core\u002Fshell TiO2\u002FSiO2 nanoparticles, J. Alloys Compd., 432, L5−L9, 10.1016\u002Fj.jallcom.2006.05.134\nSelvam, 2007, The influence of inorganic oxidants and metal ions on semiconductor sensitized photodegradation of 4-fluorophenol, Chem. Eng. J., 128, 51, 10.1016\u002Fj.cej.2006.07.016\nMuthuvel, 2020, Solar light-driven CeVO4\u002FZnO nano-heterojunction for the mineralization of Reactive Orange 4, Environ. Sci. Pollut. Res., 27, 43262, 10.1007\u002Fs11356-020-10271-8\nSubramanian, 1988, Determination of the point of zero charge of composite oxides, J. Catal., 114, 433, 10.1016\u002F0021-9517(88)90046-2\nSedaghati, 2021, Integration of oxygen vacancy rich-TiO2 with BiOI and Ag6Si2O7: ternary p-n-n photocatalysts with greatly increased performances for degradation of organic contaminants, Colloids Surf. A Physicochem. Eng. 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Chem. Soc., 53, 1959, 10.1021\u002Fja01356a053\nRice, 1932, The thermal decomposition of organic compound from the standpoint of free Radicals. II. Experimental evidence of the decomposition of organic compounds into free radicals, J. Am. Chem. Soc., 54, 3529, 10.1021\u002Fja01348a007\nLough, 1971\nVan Damme, 1975, Thermal cracking of propane and propane-propylene mixtures. Pilot plant versus industrial data, AIChE J., 21, 1065, 10.1002\u002Faic.690210604\nSundaram, 1978, Modeling of thermal cracking kinetics-3: radical mechanisms for the pyrolysis of simple paraffins, olefins, and their mixtures, Ind. Eng. Chem. Fundam., 17, 174, 10.1021\u002Fi160067a006\nSundaram, 1977, Modelling of thermal cracking kinetics-I: thermal cracking of ethane, propane and their mixtures, Chem. Eng. Sci., 32, 601, 10.1016\u002F0009-2509(77)80225-X\nSundaram, 1977, Modelling of thermal cracking kinetics-II: cracking of iso-butane, of n-butane and mixtures ethane-propane-n-butane, Chem. Eng. Sci., 32, 609, 10.1016\u002F0009-2509(77)80226-1\nAllara, 1980, Compilation of kinetic parameters for the thermal degradation of n-alkane molecules, J. Phys. Chem. Ref. Data, 9, 523, 10.1063\u002F1.555623\nRanzi, 1983, Initial product distributions from pyrolysis of normal and branched paraffins, Ind. Eng. Chem. Fundam., 22, 132, 10.1021\u002Fi100009a023\nRanjan, 2012, Modeling of ethane thermal cracking kinetics in a pyrocracker, Chem. Eng. Technol., 35, 1093, 10.1002\u002Fceat.201100529\nZhou, 2021, Optimization of the ethane thermal cracking furnace based on the integration of reaction network, Clean Technol. Environ. Policy, 23, 879, 10.1007\u002Fs10098-020-01840-z\nGujarathi, 2009, Simulation and analysis of ethane cracking process\nCaballero, 2015, Simulation and optimization of the ethane cracking process to produce ethylene, Computer Aided Chemical Engineering, 37, 917, 10.1016\u002FB978-0-444-63578-5.50148-1\nRosli, 2017, Simulation of ethane steam cracking with severity evaluation, IOP Conf. Ser. Mater. Sci. Eng., 162, 1\nDente, 1992, Detailed prediction of olefin yields from hydrocarbon pyrolysis through a fundamental simulation model (spyro), Chem. Eng. Sci., 47, 2629, 10.1016\u002F0009-2509(92)87104-X\nTomlin, 1995, Reduced mechanisms for propane pyrolysis, Ind. Eng. Chem. Res., 34, 3749, 10.1021\u002Fie00038a010\nEunjung, 2000, CRACKER- a PC-based simulator for industrial cracking furnaces, Comput. Chem. Eng., 24, 1523, 10.1016\u002FS0098-1354(00)00558-5\nHernik, 2006, Application of hydrocarbon cracking experiments to ethylene unit control and optimization, Petrol. Chem., 46, 237, 10.1134\u002FS0965544106040037\nKumar, 1985, Modelling of naphtha pyrolysis, Ind. Eng. Chem. Process Des. Dev., 24, 774, 10.1021\u002Fi200030a043\nZhiqiang, 2012, Compromising adjustment solution of primary reaction coefficients in ethylene cracking furnace modelling, Chem. Eng. Sci., 80, 16, 10.1016\u002Fj.ces.2012.05.039\nSeifzadeh, 2013, Investigation of ethylene production in naphtha thermal cracking plant in presence of steam and carbon dioxide, Chem. Eng. J., 228, 1158, 10.1016\u002Fj.cej.2013.05.048\nFroment, 1992, Kinetics and reactor design in the thermal cracking for olefins production, Chem. Eng. Sci., 47, 2163, 10.1016\u002F0009-2509(92)87033-M\nEunjung, 2001, Pyrolysis reaction mechanism for industrial naphtha cracking furnaces, Ind. Eng. Chem. Res., 24, 2409\nVan Geem, 2006, Automatic reaction network generation using RMG for steam cracking of n-hexane, AICHE Journa, 52, 718, 10.1002\u002Faic.10655\nDente, 2010, Pyrolysis of naphtha feed stocks: automatic generation of detailed kinetics and lumping procedures, Comput. Aided Chem. Eng., 28, 823, 10.1016\u002FS1570-7946(10)28138-5\nSedighi, 2010, Olefin production from heavy liquid hydrocarbon thermal kinetics and product distribution, Iran. J. Chem. Chem. Eng. (Int. Engl. Ed.), 29, 135\nKeyvanloo, 2012, Genetic algorithm model development for prediction of main products in thermal cracking of naphtha: comparison with kinetic modeling, Chem. Eng. J., 209, 255, 10.1016\u002Fj.cej.2012.07.130\nMasoumi, 2006, Modelling and control of a naphtha thermal cracking pilot plant, Ind. Eng. Chem. Res., 45, 3574, 10.1021\u002Fie050630f\nvan Goethem, 2001, Equation-based SPYRO (R) model and solver for the simulation of the steam cracking process, Comput. Chem. Eng., 25, 905, 10.1016\u002FS0098-1354(01)00655-X\nPlehiers, 1989, Firebox simulation of olefin units, Chem. Eng. Commun., 80, 81, 10.1080\u002F00986448908940517\nPlehiers, 1988, Coupled simulation of heat transfer and reaction in a steam reforming furnace, Chem. Eng. Technol., 12, 20, 10.1002\u002Fceat.270120105\nNiaei, 2003, Prediction of furnace run length for the pyrolysis of naphtha by a PC based simulator, Sci. Iran., 10, 287\nSamedov, 2019, Mathematical modeling of the unsteady hydrocarbon pyrolysis process, Petrol. Chem., 59, 151, 10.1134\u002FS0965544119020130\nGey, 2009\nParmar, 2019, Modelling and simulation of naphtha cracker, Indian Chem. Eng., 61, 182, 10.1080\u002F00194506.2018.1529633\nHu, 2012, Coupled simulation of an industrial naphtha cracking furnace equipped with long-flame and radiation burners, Comput. Chem. 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Polym., 196, 233, 10.1016\u002Fj.carbpol.2018.05.033\nEl Knidri, 2018, Extraction, chemical modification and characterization of chitin and chitosan, Int. J. Biol. Macromol., 120, 1181, 10.1016\u002Fj.ijbiomac.2018.08.139\nShanker, 2018, Preparation of sulfur nanoparticle-incorporated antimicrobial chitosan films, Food Hydrocolloids, 82, 116, 10.1016\u002Fj.foodhyd.2018.03.054\nHamid Hamedi, sara Moradi, Samuel Hudson, Alan Tonelli, Chitosan Based Hydrogels and Their Applications in Wound Dressings: A Review; Carbohydrate Polymers.\nPeng, 2015, Supramolecular polymeric vesicles formed by p-sulfonatocalix[4]arene and chitosan with multistimuliresponces, Soft Matter, 11, 290, 10.1039\u002FC4SM02170C\nPing, 2011, Chitosan-graft-(PEI-B-Cyclodextrin) copolymers and their supramolecular PEGylation for DNA and siRNA delivery, Biomaterials, 32, 8328, 10.1016\u002Fj.biomaterials.2011.07.038\nDuan, 2013, pH- responsive supramolecular vesicles based on water-soluble pillar[6]arene and ferrocene derived for drug delivery, J. Am. Chem. Soc., 135, 10542, 10.1021\u002Fja405014r\npourjavadi, 2015, Chitosan based supramolecular polypseudorotaxane as a pH- responsive silica-coated magnetic graphene oxide for triggerd anticancer drug delivery, Polymer, 76, 52, 10.1016\u002Fj.polymer.2015.08.050\nLin, 2013, A new supramolecular gel via host-guest complexation with cucurbit[8]uril and N-(4-diethylaminobenzl) chitosan, Carbohydr. Polym., 92, 429, 10.1016\u002Fj.carbpol.2012.09.027\nPerdones, 2012, Effect of chitosan-lemon essential oil coatings on storage -keeping quality of strawberry, Postharvest Biol. Technol., 70, 32, 10.1016\u002Fj.postharvbio.2012.04.002\nWang, 2017, A hyaluronidase\u002F temperature dual-responsive supramolecular assembly based on the anionic recognition of calixpyridinium, chemical communication, 53, 7517, 10.1039\u002FC7CC02693E\nShen, 2016, Smart stumli-responsive fluorescent vesicular sensor based on inclusion complexation of cyclodextrins with tyloxapol, RSC Adv., 6, 11683, 10.1039\u002FC5RA26464B\nGonur, 2019, Chitosan modified graphite electrodes developed for electrochemical monitoring of interaction between daunorubicin and DNA, Sensing and Biosensing Research, 22\nLiu, 2017, Synthesis and characterization of new calixarene-chitosan polymers, J. Macromol. Sci., Pure Appl. Chem., 54, 10.1080\u002F10601325.2017.1321959\nHuh, 2004, 92\nTian, 2020, Assembling features of calixarene-based amphiphiles and supra-amphiphiles, Mater. Chem. Front., 4, 6, 10.1039\u002FC9QM00489K\nLu, 2010, Biocompatible composite actuator: a supramolecular structure consisting of the biopolymer chitosan, carbon nanotubes, and an ionic liquid, Adv. Mater., 1, Page37\nHan-Wen Tian, a Yan-Cen Liua and Dong-Sheng Guo, Assembling Features of Calixarene-Based Amphiphiles and Supra-amphiphilesMaterial Chemistry Frontiers.\nLua, 2014, A new stationary phase for high performance liquid chromatography: calix[4]arene derivatized chitosan bonded silica gel, J. Chromatogr. A, 1350, 61, 10.1016\u002Fj.chroma.2014.05.021\nYanagi, 2005, Adsorbent for di-n-butyl phthalate using chitosan beads with upper- or lower-rim substituted water-soluble calixarenes, Polym. J., 37, 939, 10.1295\u002Fpolymj.37.939\nAuzély-Velty, 2002, New supramolecular assemblies of a cyclodextrin-grafted chitosan through specific complexation, Macromolecules, 35, 7955, 10.1021\u002Fma020664o\nLiu, 2008, Supramolecular architectures of β-cyclodextrin-modified chitosan and PyreneDerivatives mediated by carbon nanotubes and their DNA condensation, J. Am. Chem. Soc., 130, 10431, 10.1021\u002Fja802465g\nBonaccrosa, 2017, Self assembling of supramolecular adduct by sulfonate calix[4]arene and pyridiniumgemini guest in natural aqueous solution, Thermochemical Acta, 656, 47, 10.1016\u002Fj.tca.2017.08.009\nDuong, 2018, Biocompatible chitosan-functionalized upconvertingnanocomposites, ACS Omega, 3, 86, 10.1021\u002Facsomega.7b01355\nLim, 2021, Intermolecular interactions of chitosan: degree of acetylation and molecular weight, Carbohydr. Polym., 259, 10.1016\u002Fj.carbpol.2021.117782\n2012, A brief review on thermal behaviour of calixarene-Azocalixarene derivatives and their complexes, J. Macromol. Sci. Part A Pure Appl. Chem., 49, 259, 10.1080\u002F10601325.2012.649198\nBasu, 2018, Hollow chitosan nanocomposite as drug carrier system for controlled delivery of ramipril, Chem. Phys. Lett., 16, 465, 10.1016\u002Fj.cplett.2018.06.053\npilkkinen, 2013, Complexation of calixaren protected and bipyridium compounds, RSC Adv., 3, 733, 10.1039\u002FC2RA21761A",{"EN":394},"p-sulfonatocalix[8]arene and chitosan based vesicle formation studies by spectroscopic and thermal methods",{"VOID":396},"10.1016\u002Fj.jics.2023.100880","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0019452223000031",[399,414],{"id":400,"sortIndex":19,"researcher":18,"roles":401,"affiliations":402,"properties":411},"184c03fc-9801-41b0-88b0-09cab35b602c",[154],[403],{"id":18,"sortIndex":19,"affiliation":404,"properties":18},{"id":405,"createTime":406,"updateTime":406,"relativeEntities":407,"slug":18,"properties":408,"entityType":70,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"1f74ee91-13e5-4507-a2fc-3219aa7c8ada","2024-01-19T10:01:39.828+00:00",[],{"title":409},{"VI":410},"Department of Chemistry, Savitribai Phule Pune University, Pune, Maharashtra, 411 007, India",{"title":412},{"VI":413},"Vijay Karbhari Ahire",{"id":415,"sortIndex":147,"researcher":18,"roles":416,"affiliations":417,"properties":423},"dd437dc1-64b3-49af-bd38-fb778fb6a23f",[154],[418],{"id":18,"sortIndex":19,"affiliation":419,"properties":18},{"id":405,"createTime":406,"updateTime":406,"relativeEntities":420,"slug":18,"properties":421,"entityType":70,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":422},{"VI":410},{"title":424},{"VI":425},"Dipalee Dileep Malkhede",{"url":397,"publisher":427,"properties":449},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":428,"slug":10,"properties":429,"entityType":16,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"subjectFields":432,"manageAffiliations":433,"indexDatabases":434,"url":18,"thumbnailPath":18,"statistic":18,"gsStatistic":18,"type":18,"analyzePriority":18},[],{"issn":430,"title":431},{"VOID":13},{"EN":15},[],[],[435,442],{"id":86,"indexDatabase":436,"url":99,"indexYears":100,"academicFieldIds":441,"indexDatabaseRanking":107},{"id":88,"createTime":89,"updateTime":90,"relativeEntities":437,"label":438,"description":439,"key":96,"publicationTags":440,"standard":18},[],{"EN":93,"VI":93},{"EN":93,"VI":95},[98],[102,103,104,105,106],{"id":109,"indexDatabase":443,"url":124,"indexYears":18,"academicFieldIds":448,"indexDatabaseRanking":18},{"id":111,"createTime":112,"updateTime":113,"relativeEntities":444,"label":445,"description":446,"key":120,"publicationTags":447,"standard":18},[],{"EN":116,"VI":116},{"VI":118,"EN":119},[122,123],[126],{"volume":450,"pages":452},{"VOID":451},"100",{"VOID":453},"100880","2023-02-01",2023,{"id":457,"createTime":458,"updateTime":459,"relativeEntities":460,"slug":461,"properties":462,"entityType":144,"verifyStatus":145,"verifyTime":459,"verifyNote":146,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":469,"fullTextUrl":18,"authors":470,"publicationType":262,"publisherRelationship":530,"citationCount":18,"citationInfo":18,"publishDate":557,"publishYear":383,"citationAnalyzeStatus":17,"lastCitationAnalyze":18,"indexDatabases":18,"openAccess":18,"references":18,"isForceReanalyzing":293},"f0fad5da-cd64-41a7-895a-387c22d221e0","2024-01-09T06:27:40.232+00:00","2024-12-15T23:51:43.853+00:00",[],"Green-synthesis-and-characterization-of-Fe-doped-ZnO-nanoparticles-and-their-interaction-with-bovine-serum-albumin",{"references":463,"title":465,"doi":467},{"VOID":464},"Bao, 2006, Nano Lett., 6, 1719, 10.1021\u002Fnl061080t\nSaptarshi, 2013, Nanobiotechnol, 11, 26, 10.1186\u002F1477-3155-11-26\nJoel, 2020, Appl. Organomet. Chem., 34\nBhogale, 2013, Colloids Surf. B Biointerfaces, 102, 257, 10.1016\u002Fj.colsurfb.2012.08.023\nChai, 2019, Mater. Lett., 242, 103, 10.1016\u002Fj.matlet.2019.01.116\nManikandan, 2017, J. Alloys Compd., 723, 1155, 10.1016\u002Fj.jallcom.2017.06.336\nKołodziejczak-Radzimska, 2014, Materials, 7, 2833, 10.3390\u002Fma7042833\nJain, 2009, Dig. J. Nanomater. Bios., 4, 557\nElumalai, 2015, Spectrochim. Acta, Part A, 139, 200, 10.1016\u002Fj.saa.2014.12.022\nSharma, 2016, Optik, 127, 6498, 10.1016\u002Fj.ijleo.2016.04.036\nKhalil, 2017, Artif Cells Nanomed Biotechnol, 46, 838, 10.1080\u002F21691401.2017.1345928\nKumar, 2020, Letters in Applied NanoBioScience, 12, 931\nLimaye, 2011, J. Solid State Chem., 184, 391, 10.1016\u002Fj.jssc.2010.11.008\nAydın, 2013, Opt Laser. Technol., 48, 447, 10.1016\u002Fj.optlastec.2012.11.004\nSinghal, 2008, Mat. Sci. Eng. B-Adv., 153, 47, 10.1016\u002Fj.mseb.2008.09.030\nSaleh, 2014, Superlattice. Microst., 74, 217, 10.1016\u002Fj.spmi.2014.06.013\nBaranowska-Korczyc, 2011, J. Sol. Gel Sci. Technol., 61, 494, 10.1007\u002Fs10971-011-2650-1\nDinesha, 2009, J. Alloys Compd., 485, 538, 10.1016\u002Fj.jallcom.2009.06.022\nSood, 2016, Adv. Sci. Eng. Med., 8, 468, 10.1166\u002Fasem.2016.1880\nAiswarya Devi, 2017, Toxicol. Res., 6, 854, 10.1039\u002FC7TX00093F\nHarshiny, 2017, J. Bionanoscience, 11, 114, 10.1166\u002Fjbns.2017.1422\nSuram, 2016, ACS Comb. Sci., 18, 673, 10.1021\u002Facscombsci.6b00053\nKayani, 2018, Mater. Sci. Semicond. Process., 88, 109, 10.1016\u002Fj.mssp.2018.08.003\nKumar, 2011, J. Appl. Phys., 110, 103508, 10.1063\u002F1.3658221\nNarayanan, 2016, Mater. Today: Proceedings, 3, 1762\nYan, 2016, RSC Adv., 6, 77752, 10.1039\u002FC6RA15395J\nBeltrán, 2015, Phys. Chem. Chem. Phys., 17, 15284, 10.1039\u002FC5CP01408E\nVijayaprasath, 2016, Luminescence, 178, 375, 10.1016\u002Fj.jlumin.2016.06.004\nMourdikoudis, 2018, Nanoscale, 10, 12871, 10.1039\u002FC8NR02278J\nD El-Said Bakeer, 2017, J. Phys. (Paris): Conf. Ser., 869\nBi, 2009, J. Lumin., 129, 541, 10.1016\u002Fj.jlumin.2008.12.010\nWang, 2020, Chem. Phys., 530, 110641, 10.1016\u002Fj.chemphys.2019.110641\nSuryawanshi, 2016, J. Pharm. Anal., 6, 56, 10.1016\u002Fj.jpha.2015.07.001\nJoel, 2018, Appl. Organomet. Chem., 32, 10.1002\u002Faoc.4516\nAlanazi, 2016, PLoS One, 11, 10.1371\u002Fjournal.pone.0146297\nManjubaashini, 2018, J. Photochem. Photobiol., B, 183, 374, 10.1016\u002Fj.jphotobiol.2018.05.005\nPeng, 2015, PLoS One, 10\nYan, 2016, RSC Adv., 6, 77752, 10.1039\u002FC6RA15395J\nAmbika, 2015, J. Photochem. Photobiol., B, 149, 143, 10.1016\u002Fj.jphotobiol.2015.05.004\nWang, 2020, J. Biomol. Struct. 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Catalysis, J. CO2 Util., 32, 299, 10.1016\u002Fj.jcou.2019.02.003\nMondalG, 2019, Perspective of dimethyl ether as fuel: Part II- analysis of reactor systems and industrial processes, J. CO2 Util., 32, 321, 10.1016\u002Fj.jcou.2019.02.006\nJohn, 2021, Techno-economic analysis of carbon dioxide capture and utilisation analysis for an industrial site with fuel cell integration, J. Clean. Prod., 281, 10.1016\u002Fj.jclepro.2020.124920\nXu, 2021, Assessment of potential, cost, and environmental benefits of CCS-EWR technology for coal-fired power plants in Yellow River Basin of China, J. Environ. Manag., 292, 10.1016\u002Fj.jenvman.2021.112717\nZhang, 2020, 1\nCantucci, 2009, Geochemical modeling of CO2 storage in deep reservoirs: the Weyburn Project (Canada) case study, Chem. Geol., 2651–2, 181, 10.1016\u002Fj.chemgeo.2008.12.029\nCuéllar-FrancaA, 2015, Azapagic. Carbon capture, storage and utilisation technologies: a critical analysis and comparison of their life cycle environmental impacts, J. CO2 Util., 9, 82, 10.1016\u002Fj.jcou.2014.12.001\nBui, 2018, Carbon capture and storage (CCS): the way forward, Energy Environ. Sci., 115, 1062, 10.1039\u002FC7EE02342A\nRafiaani, 2020, Identifying social indicators for sustainability assessment of CCU technologies: a modified multi-criteria decision making, Soc. Indicat. Res., 1471, 15, 10.1007\u002Fs11205-019-02154-4\nVan-Dal, 2013, Design and simulation of a methanol production plant from CO2 hydrogenation, J. Cleaner Prod. 57oct., 15, 38, 10.1016\u002Fj.jclepro.2013.06.008\nPérez-Fortes, 2016, Methanol synthesis using captured CO2 as raw material: techno-economic and environmental assessment, Appl. Energy, 161, 718, 10.1016\u002Fj.apenergy.2015.07.067\nMorales-Mora, 2019, Environmental assessment of a combined heat and power plant configuration proposal with post-combustion CO2 capture for the Mexican oil and gas industry, Clean Technol. Environ. Policy, 211, 213, 10.1007\u002Fs10098-018-1630-3\nShimokata, 2018\nJones, 2010\nKasikowski, 2004, Cleaner production in the ammonia–soda industry: an ecological and economic study, J. Environ. Manag., 734, 339, 10.1016\u002Fj.jenvman.2004.08.001\nBonfim-Rocha, 2019, Production of sodium bicarbonate from CO2 reuse processes: a brief review, Int. J. Chem. React. Eng., 181\nPak, 2021, Modeling and simulation for the production process of soda ash by the ammonium sulfate‐soda method, Chem. Eng. Technol., 4410, 1759, 10.1002\u002Fceat.202100145\nHungaro Yoshi, 2022, Multi-criteria assessment of sodium bicarbonate optimized production through CO2 utilization strategies, J. Clean. Prod., 349, 10.1016\u002Fj.jclepro.2022.131419\nPlaza, 2020, CO2 capture, use, and storage in the cement industry: state of the art and expectations, Energies, 1321, 5692, 10.3390\u002Fen13215692\nProaño, 2020, Techno-economic evaluation of indirect carbonation for CO2 emissions capture in cement industry: a system dynamics approach, J. Clean. Prod., 263, 10.1016\u002Fj.jclepro.2020.121457\nBudzianowski, 2015, Single solvents, solvent blends, and advanced solvent systems in CO2 capture by absorption: a review, Int. J. Glob. Warming, 7, 184, 10.1504\u002FIJGW.2015.067749\nDelgado, 2018, Degradation of amine solvents in a CO2 capture plant at lab-scale: experiments and modeling, Ind. Eng. Chem. Res., 5718, 6057, 10.1021\u002Facs.iecr.7b05225\nPatel, 2017, Influence of copper loading on mesoporous alumina for catalytic NO reduction in the presence of CO, J. Environ. Chem. Eng., 5, 2350, 10.1016\u002Fj.jece.2017.04.035\nSantos, 2017, Natural gas dehydration by molecular sieve in offshore plants: impact of increasing carbon dioxide content, Energy Convers. Manag., 149, 760, 10.1016\u002Fj.enconman.2017.03.005\nSpeight, 2017\nFrosi, 2021, Ethylene from renewable ethanol: process optimization and economic feasibility assessment, J. Ind. Eng. Chem., 104, 272, 10.1016\u002Fj.jiec.2021.08.026\nZhang, 2016, Efficient utilization of associated natural gas in a modular gas-to-liquids process: technical and economic analysis, Fuel, 176, 32, 10.1016\u002Fj.fuel.2016.02.060\nZhang, 2015, Efficient utilization of carbon dioxide in gas-to-liquids process: process simulation and techno-economic analysis, Fuel, 157, 285, 10.1016\u002Fj.fuel.2015.04.051\nLi, 2016, Economic analysis of two processes for biodiesel production, Energy Sources Part A, 387, 898, 10.1080\u002F15567036.2013.794176",{"EN":568},"Production of high-purity carbon dioxide and sodium bicarbonate by lime cellar gas cleaning and chemical recycling: Process simulation and techno-economic 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2017, Numerical simulation of convection and heat transfer in Czochralski crystal growth by multiple-relaxation-time LBM, AIP Adv., 7\nMallya, 2021, Buoyancy-driven melting and solidification heat transfer analysis in encapsulated phase change materials, Int. J. Heat Mass Tran., 164, 10.1016\u002Fj.ijheatmasstransfer.2020.120525\nSankar, 2015, Cooling of heat sources by natural convection heat transfer in a vertical annulus, Numer. Heat Tran. Part A: Appl., 68, 847, 10.1080\u002F10407782.2015.1023097\nSheremet, 2018, Natural convection in an inclined cavity with time-periodic temperature boundary conditions using nanofluids: application in solar collectors, Int. J. Heat Mass Tran., 116, 751, 10.1016\u002Fj.ijheatmasstransfer.2017.09.070\nGhani, 1999, Numerical simulation of natural convection heating of canned food by computational fluid dynamics, J. Food Eng., 41, 55, 10.1016\u002FS0260-8774(99)00073-4\nDatta, 1988, Numerically predicted transient temperature and velocity profiles during natural convection heating of canned liquid foods, J. Food Sci., 53, 191, 10.1111\u002Fj.1365-2621.1988.tb10206.x\nWilliams, 2020, Cavity flow characteristics and applications to kidney stone removal, J. Fluid Mech., 902\nEspinosa, 2004, Numerical simulation of simultaneous freezing–melting problems with natural convection, Nucl. Eng. Des., 232, 145, 10.1016\u002Fj.nucengdes.2004.06.005\nHussien, 2021, A review of flow and heat transfer in cavities and their applications, Eur. Phys. J. Plus., 136, 353, 10.1140\u002Fepjp\u002Fs13360-021-01320-3\nChen, 2017, Natural convection supercritical fluid systems for geothermal, heat transfer, and energy conversion, vol. 33\nLi, 1998\nMcQuain, 1994, Steady viscous flow in a trapezoidal cavity, Comput. Fluid, 112, 173\nRidouane El, 2005, Numerical computation of buoyant airflows confined to attic spaces under opposing hot and cold wall conditions, Int. J. Therm. Sci., 44, 944, 10.1016\u002Fj.ijthermalsci.2005.03.008\nYesiloz, 2013, Laminar natural convection in right-angled triangular enclosures heated and cooled on adjacent walls, Int. J. Heat Mass Tran., 60, 365, 10.1016\u002Fj.ijheatmasstransfer.2013.01.009\nChang, 2016, Triangular cavity for wideband antenna with large radiating aperture, IEEE Int. Conf. Microw. Millimet. Wave Technol. (ICMMT), 88\nSaleem, 2019, Natural convection in a triangular cavity filled with air under the effect of external air stream cooling, Heat Transf, 48, 3186\nHoltzman, 2000, Laminar natural convection in isosceles triangular enclosures heated from below and symmetrically cooled from above, J. Heat Tran., 122, 485, 10.1115\u002F1.1288707\nVarol, 2007, Effects of thin fin on natural convection in porous triangular enclosures, Int. J. Therm. Sci., 46, 1033, 10.1016\u002Fj.ijthermalsci.2006.11.001\nGaskell, 1999, A finite element analysis of steady viscous flow in triangular cavities, Proc. Inst. Mech. Eng. Part C: J. Mech. Eng. Sci., 213, 263, 10.1243\u002F0954406991522635\nBasak, 2008, Finite element analysis of natural convection flow in a isosceles triangular enclosure due to uniform and non-uniform heating at the side walls, Int. J. Heat Mass Tran., 51, 4496, 10.1016\u002Fj.ijheatmasstransfer.2007.12.018\nRahman, 2012, MHD mixed convection in a channel with a triangular cavity, Numer. Heat Tran. Part A: Appl., 61, 268, 10.1080\u002F10407782.2012.648025\nAli, 2018, A numerical study of micropolar flow inside a lid-driven triangular enclosure, Meccanica, 53, 3279, 10.1007\u002Fs11012-018-0884-5\nNazeer, 2018, Effects of moving wall on the flow of micropolar fluid inside a right-angle triangular cavity, Int. J. Numer. Methods Heat Fluid Flow, 28, 2404, 10.1108\u002FHFF-10-2017-0424\nBilal, 2020, Finite element method visualization about heat transfer analysis of Newtonian material in triangular cavity with square cylinder, J. Mater. Res. Technol., 9, 4904, 10.1016\u002Fj.jmrt.2020.03.010\nFaz-Al-Asad, 2021, Impact of a closed space rectangular heat source on natural convective flow through triangular cavity, Results Phys., 23\nAn, 2019, The lid-driven right angled isosceles triangular cavity flow, J. Fluid Mech., 875, 476, 10.1017\u002Fjfm.2019.512\nNazeer, 2019, Numerical simulations of MHD forced convection flow of micropolar fluid inside a right-angle triangular cavity saturated with porous medium: effects of vertical moving wall, Can. J. Phys., 97, 1, 10.1139\u002Fcjp-2017-0904\nAli, 2019, Finite element analysis of bi-viscosity fluid enclosed in a triangular cavity under thermal and magnetic effects, Eur. Phys. J. Plus., 134, 2, 10.1140\u002Fepjp\u002Fi2019-12448-x\nKent, 2020, Numerical computational of laminar natural convection in triangular shaped cavities, WIT Trans. Eng. Sci., 128, 27, 10.2495\u002FAFM200031\nChoi, 1995, vol. 231, 99\nOkonkwo, 2020, An updated review of nanofluids in various heat transfer devices, J. Therm. Anal. Calorim.\nAli, 2020, A review on nanofluid: preparation, stability, thermophysical properties, heat transfer characteristics and application, SN Appl. Sci., 2, 1636, 10.1007\u002Fs42452-020-03427-1\nRashidi, 2017, Applications of magnetohydrodynamics in biological systems-a review on the numerical studies, J. Magn. Magn Mater., 439, 358, 10.1016\u002Fj.jmmm.2017.05.014\nAl-Habahbeh, 2016, Review of magnetohydrodynamic pump applications, Alex. Eng. J., 55, 1347, 10.1016\u002Fj.aej.2016.03.001\nSabour, 2016, Natural convection in a triangular cavity filled with a nanofluid-saturated porous medium using three heat equation model, Can. J. Phys., 94, 604, 10.1139\u002Fcjp-2016-0053\nBoulahia, 2016, Numerical investigation of mixed convection heat transfer of nanofluid in a lid driven square cavity with three triangular heating blocks, Int. J. Comput. Appl., 143, 37\nSelimefendigil, 2016, Natural convection of a hybrid nanofluid filled triangular annulus with an opening, Comput. Therm. Sci., 8, 555, 10.1615\u002FComputThermalScien.2016018833\nSelimefendigil, 2019, Magnetohydrodynamics mixed convection in a power law nanofluid-filled triangular cavity with an opening using Tiwari and Das' nanofluid model, J. Therm. Anal. Calorim., 135, 419, 10.1007\u002Fs10973-018-7037-x\nZahan, 2019, Hybrid nanofluid flow in combined convective lid-driven sinusoidal triangular enclosure, AIP Adv., 2121\nRostami, 2020, Natural convection of nanofluid in a triangle cavity with different angular positions, Adv. Sci. Eng. Med., 12, 325, 10.1166\u002Fasem.2020.2500\nAly, 2021, Double-diffusive convection of solid particles in a porous X-shaped cavity filled with a nanofluid, Phys. Scripta, 96\nIslam, 2021, Heatline visualization of MHD natural convection heat transfer of nanofluid in a prismatic enclosure, Sci. Rep., 11, 10.1038\u002Fs41598-021-89814-z\nAly, 2021, Thermosolutal convection of a nanofluid in ˄-shaped cavity saturated by a porous medium, Int. J. Numer. Methods Heat Fluid Flow, 10.1108\u002FHFF-09-2020-0603\nSelimefendigil, 2021, MHD mixed convection of Ag–MgO\u002Fwater nanofluid in a triangular shape partitioned lid-driven square cavity involving a porous compound, J. Therm. Anal. Calorim., 143, 1467, 10.1007\u002Fs10973-020-09472-7\nRashad, 2018, Magnetohydrodynamics natural convection in a triangular cavity filled with a Cu-Al2O3\u002FWater hybrid nanofluid with localized heating from below and internal heat generation, J. Heat Tran., 140, 10.1115\u002F1.4039213\nSheikholeslami, 2019, Numerical approach for MHD Al2O3-water nanofluid transportation inside a permeable medium using innovative computer method, Comput. Methods Appl. Mech. Eng., 344, 306, 10.1016\u002Fj.cma.2018.09.042\nDogonchi, 2019, Numerical analysis of natural convection of Cu–water nanofluid filling triangular cavity with semicircular bottom wall, J. Therm. Anal. Calorim., 135, 3485, 10.1007\u002Fs10973-018-7520-4\nAl-Hassani, 2021, Numerical simulations of hydromagnetic mixed convection flow of nanofluids inside a triangular cavity on the basis of a two-component nonhomogeneous mathematical model, Fluid Dynam. Mater. Process., 17, 1, 10.32604\u002Ffdmp.2021.013497\nKhan, 2021, Bioconvection flow in accelerated couple stress nanoparticles with activation energy: bio-fuel applications, Sci. Rep., 11, 3331, 10.1038\u002Fs41598-021-82209-0\nAbbasi, 2022, Thermal prospective of Casson nano-materials in radiative binary reactive flow near oblique stagnation point flow with activation energy applications, Chem. Phys. Lett., 786, 10.1016\u002Fj.cplett.2021.139172\nAldabesh, 2022, Darcy resistance flow of Sutterby nanofluid with microorganisms with applications of nano-biofuel cells, Sci. Rep., 12, 7514, 10.1038\u002Fs41598-022-11528-7\nRaja, 2022, Unsteady incompressible flow of magnetized aluminium oxide and titanium oxide nanoparticles with blood base fluid, J. Indian Chem. Soc., 99\nAlkathiri, 2022, Galerkin finite element inspection of thermal distribution of renewable solar energy in presence of binary nanofluid in parabolic trough solar collector, Alex. Eng. J., 61, 11063, 10.1016\u002Fj.aej.2022.04.036\nEl Din, 2022, Quadratic multiple regression model and spectral relaxation approach for carreau nanofluid inclined magnetized dipole along stagnation point geometry, Sci. Rep., 12, 10.1038\u002Fs41598-022-22308-8\nHussain, 2022, Solar-HVAC thermal investigation utilizing (Cu-AA7075\u002FC6H9NaO7) MHD-driven hybrid nanofluid rotating flow via second-order convergent technique: a novel engineering study, Arabian J. Sci. Eng., 10.1007\u002Fs13369-022-07140-6\nBouslimi, 2022, Thermal properties, flow and comparison between Cu and Ag nanoparticles suspended in sodium alginate as Sutterby nanofluids in solar collector, Case Stud. Therm. Eng., 39, 10.1016\u002Fj.csite.2022.102358\nSabu, 2021, Significance of nanoparticles' shape and thermo-hydrodynamic slip constraints on MHD alumina-water nanoliquid flows over a rotating heated disk: the passive control approach, Int. Commun. Heat Mass Tran., 129, 10.1016\u002Fj.icheatmasstransfer.2021.105711\nNeethu, 2022, Multiple linear regression on bioconvective MHD hybrid nanofluid flow past an exponential stretching sheet with radiation and dissipation effects, Int. Commun. Heat Mass Tran., 135, 10.1016\u002Fj.icheatmasstransfer.2022.106115\nShas, 2022, Numerical simulation of a thermally enhanced EMHD flow of a heterogeneous micropolar mixture comprising (60%)-ethylene glycol (EG), (40%)-water (W), and copper oxide nanomaterials (CuO), Case Stud. Therm. Eng., 35\nAmbreen, 2018, Effect of fin shape on the thermal performance of nanofluid-cooled micro pin-fin heat sinks, Int. J. Heat Mass Tran., 126, 245, 10.1016\u002Fj.ijheatmasstransfer.2018.05.164\nBahirel, 2021, Employing elliptical pin-fins and nanofluid within a heat sink for cooling of electronic chips regarding energy efficiency perspective, Appl. Therm. Eng., 183\nBaba, 2018, Heat transfer enhancement and pressure drop of Fe3O4 -water nanofluid in a double tube counter flow heat exchanger with internal longitudinal fins, Case Stud. Therm. Eng., 12, 600, 10.1016\u002Fj.csite.2018.08.001\nYasin, 2019, Assessment the effect of nanofluid on turbulent heat transfer and pressure drop in bend finned tube, IOP Conf. Ser. Mater. Sci. Eng., 518, 10.1088\u002F1757-899X\u002F518\u002F3\u002F032003\nWang, 2020, Effects of porous fins on mixed convection and heat transfer mechanics in lid-driven cavities: full numerical modeling and parametric simulations, Transport Porous Media, 132, 495, 10.1007\u002Fs11242-020-01402-3\nHussain, 2021, Impact of fins and inclined magnetic field in double lid-driven cavity with Cu–water nanofluid, Int. J. Therm. Sci., 161, 10.1016\u002Fj.ijthermalsci.2020.106707\nAl-Khazaal, 2021, Effects of composite material fin conductivity on natural convection heat transfer and entropy generation inside 3D cavity filled with hybrid nanofluid, J. Therm. Anal. Calorim.\nKhetib, 2021, Effect of straight, inclined and curved fins on natural convection and entropy generation of a nanofluid in a square cavity influenced by a magnetic field, Processes, 9, 1339, 10.3390\u002Fpr9081339\nKhan, 2021, Non-Newtonian fluid flow around a Y-shaped fin embedded in a square cavity, J. Therm. Anal. Calorim., 143, 573, 10.1007\u002Fs10973-019-09201-9\nKhan, 2021, Natural convection in triangular fin-shaped cavity with partially heated base using nanofluid, J. Appl. Math. Mech.\nAhmed, 2021, Non-Darcian natural convection of a nanofluid due to triangular fins within trapezoidal enclosures partially filled with a thermal non-equilibrium porous layer, J. Therm. Anal. Calorim., 145, 2691, 10.1007\u002Fs10973-020-09831-4\nHo, 2010, Natural convection heat transfer of alumina-water nanofluid in vertical square enclosures: an experimental study, Int. J. Therm. Sci., 49, 1345, 10.1016\u002Fj.ijthermalsci.2010.02.013\nChinchole, 2019, Exploring the use of alumina nanofluid as emergency cooltant for nuclear fuel bundle, J. Therm. Sci. Eng. Appl., 11, 10.1115\u002F1.4041441\nFarhana, 2019, Significance of alumina in nanofluid technology, J. Therm. Anal. Calorim., 138, 1107, 10.1007\u002Fs10973-019-08305-6\nReddy, 1993\nBasak, 2001, Influence of internal convection during microwave thawing of cylinders, AIChE J., 47, 835, 10.1002\u002Faic.690470408\nAcharya, 2021, Finite element analysis on the hydrothermal pattern of radiative natural convective nanofluid flow inside a square enclosure having nonuniform heated walls, Heat Transf\nAcharya, 2021, On the flow patterns and thermal control of radiative natural convective hybrid nanofluid flow inside a square enclosure having various shaped multiple heated obstacles, Eur. Phys. J. Plus., 136, 889, 10.1140\u002Fepjp\u002Fs13360-021-01892-0\nAcharya, 2022, On the hydrothermal behavior and entropy analysis of buoyancy driven magnetohydrodynamic hybrid nanofluid flow within an octagonal enclosure fitted with fins: application to thermal energy storage, J. Energy Storage, 53, 10.1016\u002Fj.est.2022.105198\nAcharya, 2022, Buoyancy driven magnetohydrodynamic hybrid nanofluid flow within a circular enclosure fitted with fins, Int. Commun. Heat Mass Tran., 133, 10.1016\u002Fj.icheatmasstransfer.2022.105980\nAcharya, 2022, On the magnetohydrodynamic Al2O3-water nanofluid flow through parallel fins enclosed inside a partially heated hexagonal cavity, Int. Commun. 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Mater. Interfaces, 10, 37478, 10.1021\u002Facsami.8b12116\nWalther, 2008, Janus particles, Soft Matter, 4, 663, 10.1039\u002Fb718131k\nErhardt, 2001, Janus micelles, Macromolecules, 34, 1069, 10.1021\u002Fma000670p\nRoh, 2005, Biphasic Janus particles with nanoscale Anisotropy, Nat. Mater., 4, 759, 10.1038\u002Fnmat1486\nDendukuri, 2006, Continuous-flow lithography for high-throughput microparticle synthesis, Nat. Mater., 5, 365, 10.1038\u002Fnmat1617\nKulkarni, 2008, Janus silica film with hydrophobic and hydrophilic surfaces grown at an oil–water interface, J. Mater. Chem., 18, 1021, 10.1039\u002Fb713074k\nAbbott, 1999, Reversible wettability of photoresponsive pyrimidine-coated surfaces, Langmuir, 15, 8923, 10.1021\u002Fla990558o\nNayak, 2006, An optically reversible switching membrane surface, Angew. Chem. Int. Ed., 45, 4094, 10.1002\u002Fanie.200600581\nDreyer, 2010, The chemistry of graphene oxide, Chem. Soc. Rev., 39, 228, 10.1039\u002FB917103G\nEda, 2010, Chemically derived graphene oxide: towards large-area thin-film electronics and optoelectronics, Adv. Mater., 22, 2392, 10.1002\u002Fadma.200903689\nHuang, 2011, Graphene based materials: synthesis, characterization, properties, and applications, Small, 7, 1876, 10.1002\u002Fsmll.201002009\nSingh, 2011, Graphene based materials: past, present and future, Prog. Mater. Sci., 56, 1178, 10.1016\u002Fj.pmatsci.2011.03.003\nKim, 2012, Two dimensional soft material: new faces of graphene oxide, Acc. Chem. Res., 45, 1356, 10.1021\u002Far300047s\nPumera, 2013, Electrochemistry of graphene, graphene oxide and other graphenoids: Review, Electrochem. Commun., 36, 14, 10.1016\u002Fj.elecom.2013.08.028\nPerrozzi, 2015, Graphene oxide: from fundamentals to applications, J. Phys. Condens. Matter, 27, 10.1088\u002F0953-8984\u002F27\u002F1\u002F013002\nKreuer, 1996, Proton conductivity: materials and applications, Chem. Mater., 8, 610, 10.1021\u002Fcm950192a\nSmirnov, 2013, Effect of humidity on the conductivity of graphite oxide during its photoreduction, High Energy Chem., 47, 242, 10.1134\u002FS0018143913050135\nSmirnov, 2016, Mixed proton and electron conduction in graphene oxide films: field effect in a transistor based on graphene oxide, Appl. Phys. A, 122, 513, 10.1007\u002Fs00339-016-0039-2\nHummers, 1958, Preparation of graphitic oxide, JACS, 80, 1339, 10.1021\u002Fja01539a017\nShulga, 2010, Gaseous products of thermo- and photo-reduction of graphite oxide, Chem. Phys. Lett., 498, 287, 10.1016\u002Fj.cplett.2010.08.056\nSmirnov, 2020, Application of conductive properties of graphene oxide films, vol. 42, 81\nWang, 2018, N-doping of plasma exfoliated graphene oxide via dielectric barrier discharge plasma treatment for the oxygen reduction reaction, J. Mater. Chem. A, 6, 2011, 10.1039\u002FC7TA08607E\nLiu, 2018, One-step electrochemical strategy for in-situ synthesis of S,N-codoped graphene as metal-free catalyst for oxygen reduction reaction, Carbon, 134, 316, 10.1016\u002Fj.carbon.2018.04.007\nPanomsuwan, 2016, Nitrogen-doped carbon nanoparticle - carbon nanofiber composite as an efficient metal-free cathode catalyst for oxygen reduction reaction, ACS Appl. Mater. Interfaces, 8, 6962, 10.1021\u002Facsami.5b10493\nMcDonald, 2013, Direct observation of spatially heterogeneous single-layer graphene oxide reduction kinetics, Nano Lett., 13, 5777, 10.1021\u002Fnl402057j\nMalard, 2009, Raman spectroscopy in graphene, Phys. Rep., 473, 51, 10.1016\u002Fj.physrep.2009.02.003\nSi, 2008, Synthesis of water soluble graphene, Nano Lett., 8, 1679, 10.1021\u002Fnl080604h\nJeong, 2009, Thermal stability of graphite oxide, Chem. Phys. Lett., 470, 255, 10.1016\u002Fj.cplett.2009.01.050\nAbdelsayed, 2010, Photothermal deoxygenation of graphite oxide with laser excitation in solution and graphene-aided increase in water temperature, J. Phys. Chem. Lett., 1, 2804, 10.1021\u002Fjz1011143\nStankovich, 2006, Stable Aqueous dispersions of graphitic nanoplatelets via the reduction of exfoliated graphite oxide in the pResence of poly(sodium 4-styre-nesulfonate), J. Mater. 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Rev., 90, 837, 10.1021\u002Fcr00103a010\nVeerappan, 2011, Sub-micrometer-sized graphite as a conducting and catalytic counter electrode for dye-sensitized solar cells, ACS Appl. Mater. Interfaces, 3, 857, 10.1021\u002Fam101204f\nMcCreery, 2008, Advanced carbon electrode materials for molecular electrochemistry, Chem. Rev., 108, 2646, 10.1021\u002Fcr068076m\nPierson, 1993, The element carbon, 11\nCalixto, 2007, Development of graphite-polymer composites as electrode materials, Mater. Res., 10, 109, 10.1590\u002FS1516-14392007000200003\nKvante, 2011, Production of primary aluminum, 49\nBelitskus, 2013, Carbon electrodes in the Hall-Héroult cell: a century of progress, 130\nAdams, 1958, Carbon paste electrodes, Anal. Chem., 30, 10.1021\u002Fac60141a600\nKarunadasa, 2019, Potential working electrode based on graphite and montmorillonite for electrochemical applications in both aqueous and molten salt electrolytes, Electrochem. Commun., 108, 106562, 10.1016\u002Fj.elecom.2019.106562\nSengupta, 2011, A review on the mechanical and electrical properties of graphite and modified graphite-reinforced polymer composites, Prog. Polym. Sci., 36, 638, 10.1016\u002Fj.progpolymsci.2010.11.003\nRamesh, 2009, Polymer thin films embedded with in situ grown metal nanoparticles, Chem. Soc. Rev., 38, 2646, 10.1039\u002Fb815242j\nGorton, 1995, Carbon paste electrodes modified with enzymes, tissues, and cells, Electroanalysis, 7, 23, 10.1002\u002Felan.1140070104\nWang, 1997, Thermal stabilization of enzymes immobilized within carbon paste electrodes, Anal. Chem., 69, 3124, 10.1021\u002Fac9702305\nHuang, 2019, Graphene-based sensors for human health monitoring, Front. Chem., 7, 399, 10.3389\u002Ffchem.2019.00399\nBekyarova, 2012, Advances in the chemical modification of epitaxial graphene, Physica D: Appl. Phys., 45, 54009\nCandelaria, 2019, Covalent epitope decoration of carbon electrodes using solid phase peptide synthesis, Sci. Rep., 9, 17805, 10.1038\u002Fs41598-019-54000-9\nAlegret, 1996, Rigid carbon–polymer biocomposites for electrochemical sensing-A review, Analyst, 121, 1751, 10.1039\u002FAN9962101751\nKavanagh, 2013, Mediated electron transfer in glucose oxidizing enzyme electrodes for application to bio-fuel cells: recent progress and perspectives, Phys. Chem. Chem. Phys., 15, 4859, 10.1039\u002Fc3cp44617d\nAbbas, 2015, A cysteine sensor based on a gold nanoparticle–iron phthalocyanine modified graphite paste electrode, Anal. Methods, 7, 2529, 10.1039\u002FC4AY02944E\nSánchez, 2009, Carbon nanotube\u002Fpolysulfone soft compo-sites: preparation, characterization, and application for electrochemical sensing of biomarkers, Phys. Chem. Chem. Phys., 11, 7721, 10.1039\u002Fb902710f\nHe, 2014, High-rate oxygen electroreduction over graphitic-N species exposed on 3D hierarchically porous nitrogen-doped carbons, Angew. Chem. Int. Ed., 53, 9503, 10.1002\u002Fanie.201404333\nYang, 2016, Electrochemistry of carbon dioxide on carbon electrodes, ACS Appl. Mater. Interfaces, 8, 28357, 10.1021\u002Facsami.5b09825\nLai, 2016, Unprecedented metal-free 3D porous carbonaceous electrodes for water splitting, Energy Environ. Sci., 9, 1210, 10.1039\u002FC5EE02996A\nZhang, 2016, Recent development of carbon electrode materials and their bioanalytical and environmental applications, Chem. Soc. Rev., 45, 715, 10.1039\u002FC5CS00297D\nUslu, 2007, Electroanalytical application of carbon-based electrodes to the pharmaceuticals, Anal. Lett., 40, 817, 10.1080\u002F00032710701242121\nBorenstein, 2017, Carbon-based composite materials for supercapacitor electrodes: a review, J. Mater. Chem., 5, 12653, 10.1039\u002FC7TA00863E\nIqbal, 2019, Recent development of carbon-based materials for energy storage devices, Mater. Sci. Energy Technol., 2, 417\nLuque, 1999, Validation of PVC-Graphite composite electrodes for routine analytical work, Electroanalysis, 11, 1116, 10.1002\u002F(SICI)1521-4109(199911)11:15\u003C1116::AID-ELAN1116>3.0.CO;2-8\nPerween, 2014, Polymer–graphite composite: a versatile use and throw plastic chip electrode, Analyst, 139, 5919, 10.1039\u002FC4AN01405G\nPerween, 2017, Unmodified platform for the detection of heavy metals via anodic stripping voltammetry at nanomolar level, ChemistrySelect, 2, 4428, 10.1002\u002Fslct.201700477\nPaul, 2019, Picomolar detection of retinol-binding protein 4 for the early management of type II diabetes, Biosens. Bioelectron., 128, 122, 10.1016\u002Fj.bios.2018.12.032\nMondal, 2018, NiO hollow microspheres as efficient bifunctional electrocatalysts for overall water-splitting, Int. J. Hydrogen Energy, 43, 21665, 10.1016\u002Fj.ijhydene.2018.06.139\nKhandelwal, 2019, Inclusion of peripheral basic groups activates dormant cobalt-based molecular complexes for catalytic H2 evolution in water, ACS Catal., 9, 2334, 10.1021\u002Facscatal.8b04640\nDolui, 2019, Enzyme-inspired synthetic proton relays generate fast and acid-stable cobalt-based H2 production electrocatalysts, ACS Catal., 9, 10115, 10.1021\u002Facscatal.9b02953\nKirti, 2021, Improved OER performance on the carbon composite electrode through tailored wettability, ACS Appl. Energy Mater., 04, 9618, 10.1021\u002Facsaem.1c01692\nPataniya, 2021, Photosensitive WS2\u002FZnO nano-heterostructure-based electrocatalysts for hydrogen evolution reaction, ACS Appl. Energy Mater., 4, 755, 10.1021\u002Facsaem.0c02608\nPataniya, 2021, Enhanced electrocatalytic hydrogen evolution reaction by injection of photogenerated electrons in Ag\u002FWS2 nanohybrids, Appl. Surf. Sci., 563, 150323, 10.1016\u002Fj.apsusc.2021.150323\nAromaa, 2007, Aqueous processing of metals, vol. 5, 161\nMackinnon, 1986, Aluminum cathode effects in zinc electrowinning from industrial acid sulfate electrolyte, J. Appl. Electrochem., 16, 127, 10.1007\u002FBF01015993\nAdcock, 1985, The importance of cathode zinc morphology as an indicator of industrial electrowinning performance, J. Appl. Electrochem., 15, 865, 10.1007\u002FBF00614362\nXue, 1991, Effect of surface conditioning on zinc nucleation using aluminum cathodes, J. Appl. Electrochem., 21, 231, 10.1007\u002FBF01052576\nXue, 1991, Effect of fluoride ions on the corrosion of aluminum in sulphuric acid and zinc electrolyte, J. Appl. Electrochem., 21, 238, 10.1007\u002FBF01052577\nMureşan, 1996, Influence of metallic impurities on zinc electrowinning from sulfate electrolyte, Hydrometallurgy, 43, 345, 10.1016\u002F0304-386X(96)00012-6\nMackinnon, 1984, The effect of tin on zinc electrowinning from industrial acid sulfate electrolyte, J. Appl. Electrochem., 14, 701, 10.1007\u002FBF00615257\nAlkatsev, 2014, Influence of impurities in an electrolyte (tin, germanium, and antimony) on current efficiency within electrowinning of zinc, Russ. J. Non-Ferrous Metals, 55, 327, 10.3103\u002FS1067821214040026\nNicol, 2017, The effects of halides in the electrowinning of zinc. I. Oxidation of chloride on lead-silver anodes, Hydrometallurgy, 173, 125, 10.1016\u002Fj.hydromet.2017.08.015\nNicol, 2017, Effect of halides in the electrowinning of zinc. II. Corrosion of lead-silver anodes, Hydrometallurgy, 173, 178, 10.1016\u002Fj.hydromet.2017.08.017\nWu, 2014, The effects of additives on the electrowinning of zinc from sulfate solutions with high fluoride concentration, Hydrometallurgy, 141, 31, 10.1016\u002Fj.hydromet.2013.09.007\nRahman, 2022, Bulk synthesis of tungsten-oxide nanomaterials by a novel, plasma chemical reactor configuration, studies on their performance for waste-water treatment and hydrogen evolution reactions, Chem. Eng. J., 428, 131111, 10.1016\u002Fj.cej.2021.131111\nIken, 2007, Classic and local analysis of corrosion behaviour of graphite and stainless steels in polluted phosphoric acid, Electrochim. Acta, 52, 2580, 10.1016\u002Fj.electacta.2006.09.013\nAlias, 2015, Morphology study of electrodeposited zinc from zinc sulfate solutions as anode for zinc-air and zinc-carbon batteries, J. King Saud Univ-Eng. Sci., 27, 43\nRecéndiz, 2007, Current efficiency studies of the zinc electrowinning process on aluminum rotating cylinder electrode (RCE) in sulfuric acid medium: influence of different additives, Electrochim. Acta, 52, 6880, 10.1016\u002Fj.electacta.2007.04.112\nShaigan, 2010, Morphology control of electrodeposited zinc from alkaline zincate solutions for rechargeable zinc air batteries, ECS Trans, 28, 35, 10.1149\u002F1.3507925\nChaba, 2019, Morphology study of zinc anode prepared by electroplating method for rechargeable Zn-MnO2 battery, Heliyon, 5, 10.1016\u002Fj.heliyon.2019.e02681",{"EN":783},"Prospects of using plastic chip electrodes at high current density: Recovery of zinc from acidic sulfate solutions",{"VOID":785},"10.1016\u002Fj.jics.2021.100226","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0019452221002260",[788,813,832],{"id":789,"sortIndex":209,"researcher":18,"roles":790,"affiliations":791,"properties":810},"4b474f75-ad4d-4bfd-9108-9efe6b80aec4",[154],[792,802],{"id":793,"sortIndex":147,"affiliation":794,"properties":801},"43e35025-e71d-443a-958c-d5db2bf283dd",{"id":795,"createTime":796,"updateTime":796,"relativeEntities":797,"slug":18,"properties":798,"entityType":70,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"8162a82f-e4c6-4557-ba7a-4fa03aa36ea5","2024-01-27T06:07:58.734+00:00",[],{"title":799},{"VI":800},"Academy of Scientific and Innovative Research (AcSIR), Ghaziabad, Uttar Pradesh, 201 002, India",{},{"id":18,"sortIndex":19,"affiliation":803,"properties":18},{"id":804,"createTime":805,"updateTime":805,"relativeEntities":806,"slug":18,"properties":807,"entityType":70,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"e8e1ce74-12a7-4892-a486-9b87246ea203","2024-01-27T06:07:58.839+00:00",[],{"title":808},{"VI":809},"Analytical and Environmental Science Division and Centralized Instrument Facility, CSIR–Central Salt and Marine Chemicals Research Institute (CSMCRI), Council of Scientific and Industrial Research, Gijubhai Badheka Marg, Bhavnagar, 364 002, Gujarat, India",{"title":811},{"VI":812},"Divesh N. 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Am. Chem. Soc., 131, 2776, 10.1021\u002Fja808444z\nXia, 2020, Adsorption characteristics and cooling\u002Fheating performance of COF-5, Applied Thermal Engineering, Appl. Therm. Eng., 176, 10.1016\u002Fj.applthermaleng.2020.115442\nShabir, 2020, Recent updates on the adsorption capacities of adsorbent-adsorbate pairs for heat transformation applications, Renew. Sustain. Energy Rev., 119, 10.1016\u002Fj.rser.2019.109630\nFan, 2016, Adsorption cooling cycles: insights into carbon dioxide adsorption on activated carbons, Energy, 102, 491, 10.1016\u002Fj.energy.2016.02.112\nYao, 2014, Study on the performance of silica gel dehumidification system with ultrasonic-assisted regeneration, Energy, 66, 799, 10.1016\u002Fj.energy.2014.01.061\nKabeel, 2009, Adsorption–desorption operations of multilayer desiccant packed bed for dehumidification applications, Renew. Energy, 34, 255, 10.1016\u002Fj.renene.2008.04.011\nNg, 2013, Desalination, Adsorption desalination: an emerging low-cost thermal desalination method, Desalination, 308, 161, 10.1016\u002Fj.desal.2012.07.030\nHe, 2014, Methane storage in metal-organic frameworks, Chem. Soc. Rev., 43, 5657, 10.1039\u002FC4CS00032C\nLin, 2017, Metal-organic frameworks for carbon dioxide capture and methane storage, Adv. Energy Mater., 7, 10.1002\u002Faenm.201601296\nKayal, 2018, Activated carbon (type Maxsorb-III) and MIL-101(Cr) metal organic framework based composite adsorbent for higher CH4 storage and CO2 capture, Chem. Eng. J., 334, 780, 10.1016\u002Fj.cej.2017.10.080\nHan, 2007, Lithium-doped metal-organic frameworks for reversible H2 storage at ambient temperature, J. Am. Chem. Soc., 129, 8422, 10.1021\u002Fja072599+\nMavrandonakis, 2008, Why Li doping in MOFs enhances H2 storage capacity? A multi-scale theoretical study, J. Phys. Chem. C, 112, 7290, 10.1021\u002Fjp7102098\nHimsl, 2009, Improving the hydrogen-adsorption properties of a hydroxy-modified MIL-53(Al) structural analogue by lithium doping, Angew. Chem. Int. Ed., 48, 4639, 10.1002\u002Fanie.200806203\nDinari, 2015, Fabrication and characterization of novel highly transparent and organo-soluble poly (ether imide) thin film for gas separation, New J. Chem., 39, 4478, 10.1039\u002FC4NJ02105C\nFakhar, 2020, Elucidating the effect of chain extenders substituted by aliphatic side chains on morphology and gas separation of polyurethanes, Eur. Polym. J., 122, 10.1016\u002Fj.eurpolymj.2019.109346\nDinari, 2015, Novel and processable polyimides with a N-benzonitrile side chain: thermal, mechanical and gas separation properties, RSC Adv., 5, 26040, 10.1039\u002FC4RA17030J\nFakhar, 2019, Association of hard segments in gas separation through polyurethane members with aromatic bulky chain extenders, J. Mem. Sci., 574, 134, 10.1016\u002Fj.memsci.2018.12.062\nLi, 2021, Adsorption of antimony using amino-functionalized magnetic MIL-101(Cr): optimization by response surface methodology, J. Indian Chem. Soc., 98, 10.1016\u002Fj.jics.2021.100204\nXu, 2020, Efficient solar-driven water harvesting from arid air with metal–organic frameworks modified by hygroscopic salt, Angew. Chem. Int. Ed., 59, 5202, 10.1002\u002Fanie.201915170\nZhu, 2020, Efficient CO2 capture from ambient air with amine-functionalized Mg–Al mixed metal oxides, J. Mater. Chem., 8, 16421, 10.1039\u002FD0TA05079B\nZhang, 2009, Interactions of hydrogen molecules with metal-organic frameworks at adsorption sites, Chem. Phys. Lett., 469, 261, 10.1016\u002Fj.cplett.2009.01.003\nFakhar, 2020, Enhanced CO2 capture through bulky poly (urethane-urea)-based MMMs containing hyperbranched triazine based silica nanoparticles, Separ. Purif. Technol., 241, 10.1016\u002Fj.seppur.2020.116734\nRodriguez-Reinoso, 1987, A standard adsorption isotherm for the characterization of activated carbons, J. Phys. Chem., 91, 515, 10.1021\u002Fj100287a006\nPirngruber, 2009, Amines immobilized on a solid support for postcombustion CO2 capture–A preliminary analysis of the performance in a VSA or TSA process based on the adsorption isotherms and kinetic data, Energy Proc., 1, 1335, 10.1016\u002Fj.egypro.2009.01.175\nTeo, 2017, Evaluation of CH4 and CO2 adsorption on HKUST-1 and MIL-101(Cr) MOFs employing Monte Carlo simulation and comparison with experimental data, Appl. Therm. Eng., 110, 891, 10.1016\u002Fj.applthermaleng.2016.08.126\nFurukawa, 2015, Heterogeneity within order in metal-organic frameworks, Angew. Chem. Int. Ed., 54, 3417, 10.1002\u002Fanie.201410252\nNg, 2017, A universal isotherm model to capture adsorption uptake and energy distribution of porous heterogeneous surface, Sci. Rep., 7, 10.1038\u002Fs41598-017-11156-6\nHönicke, 2018, Balancing mechanical stability and ultrahigh porosity in crystalline framework materials, Angew. Chem. Int. Ed., 57, 13780, 10.1002\u002Fanie.201808240\nFérey, 2005, A Chromium Terephthalate-Based Solid with Unusually Large Pore Volumes and Surface Area, Science, 309, 2040, 10.1126\u002Fscience.1116275\nFarha, 2012, Designing higher surface area metal–organic frameworks: are triple bonds better than phenyls?, J. Am. Chem. Soc., 134, 9860, 10.1021\u002Fja302623w\nDas, 2021, Recent developments in the adsorptive removal of heavy metal ions using metal-organic frameworks and graphene-based adsorbents, J. Indian Chem. Soc., 98, 10.1016\u002Fj.jics.2021.100188\nAnahidzade, 2019, Enhancement of hydroxide conduction by incorporation of metal-organic frameworks into a semi-interpenetrating network, Energy Fuel., 33, 5749, 10.1021\u002Facs.energyfuels.9b00650\nDinari, 2021, Preparation of MIL-101-NH2 MOF\u002Ftriazine based covalent organic framework hybrid and its application in acid blue 9 removals, Polymer, 215, 10.1016\u002Fj.polymer.2021.123383\nAnahidzade, 2018, Metal Organic framework anchored sulfonated poly (ether sulfone) as a high temperature proton exchange membrane for fuel cell, J. Membr. Sci., 565, 281, 10.1016\u002Fj.memsci.2018.08.037\nImanipoor, 2021, Adsorption and desorption of amoxicillin antibiotic from water matrices using an effective and recyclable MIL-53(Al) metal-organic framework adsorbent, J. Chem. Eng. Data, 66, 389, 10.1021\u002Facs.jced.0c00736\nChowdhury, 2012, Adsorption of CO, CO2 and CH4 on Cu-BTC and MIL-101 metal organic frameworks: effect of open metal sites and adsorbate polarity, Microporous Mesoporous Mater., 152, 246, 10.1016\u002Fj.micromeso.2011.11.022\nKayal, 2015, Study of metal-organic framework MIL-101(Cr) for natural gas (methane) storage and compare with other MOFs (metal-organic frameworks), Energy, 91, 772, 10.1016\u002Fj.energy.2015.08.096\nSun, 2014, Study of HKUST (Copper benzene-1,3,5-tricarboxylate, Cu-BTC MOF)-1 metal organic frameworks for CH4 adsorption: an experimental Investigation with GCMC (grand canonical Monte-carlo) simulation, Energy, 76, 419, 10.1016\u002Fj.energy.2014.08.033\nKayal, 2016, Prediction of phase transitions by investigating CO2 adsorption on 1% lithium doped MIL-101 (Cr) MOF with anomalous type isosteric heat of adsorption, Microporous and Mesoporous Materials, Microporous Mesoporous Mater., 236, 21, 10.1016\u002Fj.micromeso.2016.08.020\nStasa, 2014, Methane diffusion in a porous environment, Defect Diffusion Forum, 353, 50, 10.4028\u002Fwww.scientific.net\u002FDDF.353.50\nPeng, 2013, Methane storage in Metal−Organic frameworks: current records, Surprise Findings, and Challenges, 135, 11887\nSimmons, 2011, Carbon capture in metal-organic frameworks-a comparative study, Energy Environ. Sci., 4, 2177, 10.1039\u002Fc0ee00700e\nPuziy, 1995, Heterogeneity of synthetic active carbons, Langmuir, 11, 543, 10.1021\u002Fla00002a030\nLoh, 2010, Improved isotherm data for adsorption of methane on activated carbons, J. Chem. Eng. Data, 55, 2840, 10.1021\u002Fje901011c\nBachmann, 2006, Determination of the adhesion energy of MEMS structures by applying Weibull-type distribution function, Sens. 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Eng. J., 56, 263, 10.1016\u002Fj.aej.2016.12.019\nBalla, 2021, Heat transfer potentials of zno\u002Fwater nanofluid in free impingement jet, Case Stud. Therm. Eng., 27, 10.1016\u002Fj.csite.2021.101143\nMohammadpour, 2021, Optimization of nanofluid heat transfer in a microchannel heat sink with multiple synthetic jets based on cfd-dpm and mla, Int. J. Therm. Sci., 167, 10.1016\u002Fj.ijthermalsci.2021.107008\nMohammadpour, 2021, Evaluation of al2o3-water nanofluid in a microchannel equipped with a synthetic jet using single-phase and eulerian–Lagrangian models, Int. J. Therm. Sci., 161, 10.1016\u002Fj.ijthermalsci.2020.106705\nEtminana, 2021, Forced convective heat transfer analysis for two-dimensional slot jet of water-cuo nanofluid, Jurnal Kejuruteraan, 33, 229, 10.17576\u002Fjkukm-2021-33(2)-08\nSelimefendigil, 2021, Combined effects of double porous layers and nanofluids on the performance of confined single and multi-jet impingement heat transfer, Chem. Eng. Commun., 1\nPuneeth, 2021, The three-dimensional bioconvective flow of sisko nanofluid under robin's conditions, Heat Transfer, 50, 7632, 10.1002\u002Fhtj.22246\nWang, 2021, Investigation on the heat transfer enhancement by nanofluid under electric field considering electrophorestic and thermophoretic effect, Case Stud. Therm. Eng., 28, 10.1016\u002Fj.csite.2021.101498\nShekaramiz, 2021, Mhd nanofluid free convection inside the wavy triangular cavity considering periodic temperature boundary condition and velocity slip mechanisms, Int. J. Therm. Sci., 170, 10.1016\u002Fj.ijthermalsci.2021.107179\nChu, 2021, Enhancement in thermal energy and solute particles using hybrid nanoparticles by engaging activation energy and chemical reaction over a parabolic surface via finite element approach, Fractal and Fractional, 5, 119, 10.3390\u002Ffractalfract5030119\nNazeer, 2022, Theoretical study of mhd electro-osmotically flow of third-grade fluid in micro channel, Appl. Math. Comput., 420\nZhao, 2021\nPuneeth, 2021, vol. 152\nManjunatha, 2022, Theoretical study of convective heat transfer in ternary nanofluid flowing past a stretching sheet, J. Appl. Computat. Mechan., 8, 1279\nHabib, 2021, On bioconvection and mass transpiration of micropolar nanofluid dynamics due to an extending surface in existence of thermal radiations, Case Stud. Therm. Eng., 27, 10.1016\u002Fj.csite.2021.101239\nMandal, 2021, Role of surface undulation during mixed bioconvective nanofluid flow in porous media in presence of oxytactic bacteria and magnetic fields, Int. J. Mech. Sci., 211, 10.1016\u002Fj.ijmecsci.2021.106778\nKoriko, 2021, Exploration of bioconvection flow of mhd thixotropic nanofluid past a vertical surface coexisting with both nanoparticles and gyrotactic microorganisms, Sci. Rep., 11, 1, 10.1038\u002Fs41598-021-96185-y\nShafiq, 2021, Statistical modeling for bioconvective tangent hyperbolic nanofluid towards stretching surface with zero mass flux condition, Sci. Rep., 11, 1, 10.1038\u002Fs41598-021-93329-y\nAbdal, 2021, Implications of bioconvection and activation energy on reiner–rivlin nanofluid transportation over a disk in rotation with partial slip, Chin. J. Phys., 73, 672, 10.1016\u002Fj.cjph.2021.07.022\nChu, 2022, Combined impact of cattaneo-christov double diffusion and radiative heat flux on bio-convective flow of maxwell liquid configured by a stretched nano-material surface, Appl. Math. Comput., 419\nBuongiorno, 2006, Convective transport in nanofluids, J. Heat Tran., 128, 10.1115\u002F1.2150834\nMabood, 2022, Characteristics of thermophoresis and brownian motion on radiative reactive micropolar fluid flow towards continuously moving flat plate: ham solution, Math. Comput. Simulat., 191, 187, 10.1016\u002Fj.matcom.2021.08.004\nKalpana, 2021, Magnetohydrodynamic boundary layer flow of hybrid nanofluid with the thermophoresis and brownian motion in an irregular channel: a numerical approach, Eng. Sci. Technol. Int. J.\nHazarika, 2022, Brownian motion and thermophoresis behavior on micro-polar nano-fluid—a numerical outlook, Math. Comput. Simulat., 192, 452, 10.1016\u002Fj.matcom.2021.09.012\nAl Hajaj, 2021, Brownian motion and thermophoretic effects in mini channels with various heights, Processes, 9, 10.3390\u002Fpr9111965\nHayat, 2021, Entropy analysis for second grade nanomaterials flow with thermophoresis and brownian diffusions, Int. Commun. Heat Mass Tran., 127, 10.1016\u002Fj.icheatmasstransfer.2021.105564\nCao, 2021, Mhd natural convection nanofluid flow in a heat exchanger: effects of brownian motion and thermophoresis for nanoparticles distribution, Case Stud. Therm. Eng., 28, 10.1016\u002Fj.csite.2021.101394\nRaees, 2014, Explicit solutions of wall jet flow subject to a convective boundary condition, Bound. Value Probl., 1\nSheikholeslami, 2016, Magnetic field effect on unsteady nanofluid flow and heat transfer using buongiorno model, J. Magn. Magn Mater., 416, 164, 10.1016\u002Fj.jmmm.2016.05.026\nSheikholeslami, 2016, Nanofluid hydrothermal behavior in existence of lorentz forces considering joule heating effect, J. Mol. Liq., 224, 526, 10.1016\u002Fj.molliq.2016.10.037\nDogonchi, 2016, Convection–radiation heat transfer study of moving fin with temperature-dependent thermal conductivity, heat transfer coefficient and heat generation, Appl. Therm. Eng., 103, 705, 10.1016\u002Fj.applthermaleng.2016.04.121\nErfani, 2010, The modified differential transform method for solving off-centered stagnation flow toward a rotating disc, Int. J. Comput. 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