Berenjian A, Chan N, Jafarizadeh Malmiri H: Volatile organic compounds removal methods: A review. Am J Biochem Biotechnol. 2012, 8: 220-229.
Xianguo L: Principles of Fuel Cells. 1962, New York London: Taylor and Francis group
Mat NC, Liong A: Chitosan-poly (vinyl alcohol) and calcium oxide composite membrane for direct methanol fuel cell applications. Eng Letters. 2009, 17: 301-304.
Ye YS, Rick J, Hwang BJ: Water soluble polymers as proton exchange membranes for fuel cells. Polymers. 2012, 4: 913-963.
Ma J, Sahai Y: Chitosan biopolymer for fuel cell applications. Carbohydr Polym. 2013, 92: 955-975.
Varshney P, Gupta S: Natural polymer-based electrolytes for electrochemical devices: a review. Ionics. 2011, 17: 479-483.
Dash M, Chiellini F, Ottenbrite RM, Chiellini E: Chitosan-A versatile semi-synthetic polymer in biomedical applications. Prog Polym Sci. 2011, 36: 981-1014.
Jafarizadeh Malmiri H, Jahanian MA, Berenjian A: Potential applications of chitosan nanoparticles as novel support in enzyme immobilization. Am J Biochem Biotechnol. 2012, 8: 203-219.
Merle G, Wessling M, Nijmeijer K: Anion exchange membranes for alkaline fuel cells: A review. J Membr Sci. 2011, 377: 1-35.
Winter M, Brodd RJ: What are batteries, fuel cells, and supercapacitors?. Chem Rev. 2004, 104: 4245-4270.
Cooper HW: A future in fuel cells. Chem Eng Progress. 2007, 103: 34-43.
Sopian K, Wan Daud RW: Challenges and future developments in proton exchange membrane fuel cells. Renew Energy. 2006, 35: 719-727.
Odeh AO, Osifo P, Noemagus H: Chitosan: a low cost material for the production of membrane for use in PEMFC-A review. Energ Sources Part A. 2013, 35: 152-163.
Gülzow E, Schulze M: Long-term operation of AFC electrodes with CO2 containing gases. J Power Sources. 2004, 127: 243-251.
Gouérec P, Poletto L, Denizot J, Sanchez-Cortezon E, Miners JH: The evolution of the performance of alkaline fuel cells with circulating electrolyte. J Power Sources. 2004, 129: 193-204.
Schulze M, Gülzow E: Degradation of nickel anodes in alkaline fuel cells. J Power Sources. 2004, 127: 252-263.
Chakrabarty B, Ghoshal AK, Purkait MK: SEM analysis and gas permeability test to characterize polysulfone membrane prepared with polyethylene glycol as additive. J Coll Interface Sci. 2008, 320: 245-253.
Bischoff M: A high temperature fuel cell on the edge to commercialization. J Power Sources. 2006, 160: 842-845.
Amorelli A, Wilkinson MB, Bedont P, Capobianco P, Marcenaro B, Parodi F, Torazza A: An experimental investigation into the use of molten carbonate fuel cells to capture CO2 from gas turbine exhaust gases. Energy. 2004, 29: 1279-1284.
Kim YJ, Chang IG, Lee TW, Chung MK: Effects of relative gas flow direction in the anode and cathode on the performance characteristics of a molten carbonate fuel cell. J Membr Sci. 2010, 89: 1019-1028.
Cheddie DF, Munroe NDH: A two-phase model of an intermediate temperature PEM fuel cell. Int J Hydrogen Energy. 2007, 32: 832-841.
Sammes N, Bove R, Stahl K: Phosphoric acid fuel cell: Fundamentals and applications. Curr Opin Solid State Mater Sci. 2004, 8: 372-378.
Acres GJK: Recent advances in fuel cells technology and its applications. J Power Sources. 2001, 100: 60-66.
Hoogers G: Fuel cell technology handbook. Edited by: Hoogers G. 2003, Boca Raton: FL: CRC Press, 8-39.
Kreuer KD: On the development of proton conducting polymer membranes for hydrogen and methanol fuel cells. J Membr Sci. 2001, 185: 29-39.
Ramirez-Salgado J: Study of basic biopolymers as proton membrane for fuel cell systems. Electrochim Acta. 2007, 52: 3766-3778.
Othman MHD, Ismail AF, Mustafa A: Recent development of polymer electrolyte membranes for direct methanol fuel cell application – A review. Malaysian Polym J. 2010, 5: 1-36.
Matelli JA, Bazzo E: A methodology for thermodynamic simulation of high temperature internal reforming fuel cell systems. J Power Sources. 2005, 142: 160-168.
Song SJ, Moon JH, Lee TH, Dorris SE, Balachandran U: Thickness dependence of hydrogen permeability for Ni-BaCe0.8Y0.2O3-δ. Solid State Ion. 2008, 179: 1854-1857.
Bagotsky VS: Fuel cells: problems and solutions. Edited by: Bagotsky VS. 2009, Hobken, New Jersy: John Wiley & Sons Inc, 45-70.
Xie Y, Xue X: Transient modeling of anode-supported solid oxide fuel cells. Int J Hydrogen Energy. 2009, 34: 6882-6891.
Offer GJ, Brandon NP: The effect of current density and temperature on the degradation of nickel cermet electrodes by carbon monoxide in solid oxide fuel cells. Chem Eng Sci. 2009, 64: 2291-2300.
Moehlenbrock MJ, Arechederra RL, Sjoholm KH, Minteer SD: Analytical techniques for characterizing enzymatic biofuel cells. Anal chem. 2009, 81: 9538-9545.
Arechederra RL, Minteer SD: Organelle-based biofuel cells: Immobilized mitochondria at carbon paper electrodes. Electrochim Acta. 2008, 53: 6698-6703.
Palmore GTR: Bioelectric power generation. Trends Biotechnol. 2004, 22: 99-100.
Minteer SD, Liaw BY, Cooney MJ: Enzyme-based biofuel cells. Curr Opin Biotechnol. 2007, 18: 228-234.
Barton SC, Gallaway J, Atanassov P: Enzymatic biofuel cells for implantable and microscale devices. Chem Rev. 2004, 104: 4867-4886.
Kim J, Jia H, Wang P: Challenges in biocatalysis for enzymebased biofuel cells. Biotechnol Adv. 2006, 24: 296-308.
Katz E, Lioubashevski O, Willner I: Magnetic field effects on bioelectrocatalytic reactions of surface-confined enzyme systems: enhanced performance of biofuel cells. J Am Chem Soc. 2005, 127: 3979-3988.
Arning MD, Treu BL, Minteer SD: Citric acid cycle biomimic in an ammonium salt modified nafion membrane for fuel cell applications. Polym Mater Sci Eng. 2004, 90: 566-569.
Beilke MC, Minteer SD: Immobilization of glycolysis enzymes in hydrophobically modified Nafion. Polym Mater Sci Eng. 2006, 94: 556-557.
Aranaz I, Harris R, Heras A: Chitosan amphiphilic derivatives, chemistry and applications. Curr Org Chem. 2010, 14: 308-330.
Scott K, Yu EH, Ghangrekar MM, Erable B, Duteanu NM: Biological and microbial fuel cells. Compr Renew Energy. 2012, 4: 277-300.
Virdis B, Freguia S, Rozendal RA, Rabaey K, Yuan Z, Keller J: Microbial fuel cells. Treatise Water Sci. 2011, 4: 641-665.
Moon H, Chang IS, Kim BH: Continuous electricity production from artificial wastewater using a mediator-less microbial fuel cell. Bioresource Tech. 2005, 97: 621-627.
Kim BH, Chang IS, Gil GC, Park HS, Kim HJ: Novel BOD sensor using mediator-less microbial fuel cell. Biotechnol Lett. 2003, 25: 541-545.
Bond DR, Lovely DR: Evidence for involvement of an electron shuttle in electricity generation by Geothrix fermentans. Appl Environ Microbiol. 2005, 71: 2186-2189.
Davis F, Higso SPJ: Biofuel cells-Recent advances and applications. Biosens Bioelectron. 2007, 22: 1224-1235.
Gülzow E: Alkaline fuel cells: a critical view. J Power Sources. 1996, 61: 99-104.
Zaidi SMJ: PhD Thesis. Development of proton conducting composite membranes for fuel cell applications. 2000, Laval University
Souzy R, Ameduri B: Functional fluoropolymers for fuel cell membranes. Prog Polym Sci. 2005, 30: 644-687.
Souzy R, Ameduri B, Boutevin B: Functional fluoropolymers for fuel cell membranes. Prog Polym Sci. 2004, 29: 75-106.
Feichtinger J, Galm R, Walker M, Baumgartner KM, Schulz A, Rauchle E, Schumacher U: Plasma polymerized barrier films on membranes for direct methanol fuel cells. Surf Coat Technol. 2001, 142–144: 181-186.
Li L, Zhang J, Wang Y: Sulfonated poly (ether ether ketone) membranes for direct methanol fuel cell. J Membr Sci. 2003, 226: 159-167.
Jung DH, Cho SY, Peck DH, Shin DR, Kim JS: Performance evaluation of a Nafion/silicon oxide hybrid membrane for direct methanol fuel cell. J Power Sources. 2002, 106: 173-177.
Yoon SR, Hwang GH, Cho WI, Oh IH, Hong SA, Ha HY: Modification of polymer electrolyte membranes for DMFCs using Pd films formed by sputtering. J Power Sources. 2001, 106: 215-223.
Ma ZQ, Cheng P, Zhao TS: A palladium-alloy deposited Nafion membrane for direct methanol fuel cells. J Membr Sci. 2003, 215: 327-336.
Choi WC, Kim JD, Woo SI: Modification of proton conducting membrane for reducing methanol crossover in a direct-methanol fuel cell. J Power Sources. 2001, 96: 411-414.
Kim YS, Hickner MA, Dong L, Pivovar BS, McGrath JE: Sulfonated poly(arylene ether sulfone) copolymer proton exchange membranes: Composition and morphology effects on the methanol permeability. J Membr Sci. 2004, 243: 317-326.
Jung DH, Cho SY, Peck DH, Shin DR, Kim JS: Preparation and performance of a Nafion®/montmorillonite nanocomposite membrane for direct methanol fuel cell. J Power Sources. 2003, 118: 205-211.
Smit EA, Ocampo AL, Espinosa-Medina MA, Sebastian PJ: A modified Nafion membrane with in situ polymerized polypyrrole for the direct methanol fuel cell. J Power Sources. 2003, 124: 59-64.
Shao ZG, Wang X, Hsing IM: Composite Nafion/polyvinyl alcohol membranes for the direct methanol fuel cell. J Membr Sci. 2002, 210: 147-153.
Zhou X, Weston J, Chalkova E, Hofmann MA, Ambler CM, Allcock HR, Lvov SN: High temperature transport properties of polyphosphazene membranes for direct methanol fuel cells. Electrochim Acta. 2003, 48: 2173-2180.
Guo Q, Pintauro PN, Tang H, O’Connor S: Sulfonated and crosslinked polyphosphazene-based proton-exchange membranes. J Membr Sci. 1999, 154: 175-181.
Arico AS, Baglio V, Blasi AD, Creti P, Antonucci PL, Antonucci V: Influence of the acid–base characteristics of inorganic fillers on the high temperature performance of composite membranes in direct methanol fuel cells. Solid State Ion. 2003, 161: 251-265.
Antonucci PL, Arico AS, Creti P, Ramunni E, Antonucci V: Investigation of a direct methanol fuel cell based on a composite Nafion-silica electrolyte for high temperature operation. Solid State Ion. 1999, 125: 431-437.
Pivovar BS, Wang Y, Cussler EL: Pervaporation membranes in direct methanol fuel cells. J Membr Sci. 1999, 154: 155-162.
Jones DJ, Rozière J, Marrony M: High temperature DMFC stack operating with non-fluorinated membranes. Fuel Cells Bulletin. 2005
Bauer F, Porada MW: Microstructural characterization of Zr-phosphate-Nafion® membranes for direct methanol fuel cell (DMFC) applications. J Membr Sci. 2004, 233: 141-149.
Nunes SP, Ruffmann B, Rikowski E, Vetter S, Richau K: Inorganic modification of proton conductive polymer membranes for direct methanol fuel cells. J Membr Sci. 2002, 203: 215-225.
Cohen SG, Wolosinski HT, Scheuer PJ: α, β, β-trifluorostyrene and α-chloro-β, β-difluorostyrene. J Am Chem Soc. 1949, 71: 3439-3440.
Lin CW, Thangamuthu R, Yang CJ: Proton-conducting membranes with high selectivity from phosphotungstic acid-doped poly(vinyl alcohol) for DMFC applications. J Membr Sci. 2005, 253: 23-31.
Prober M: The synthesis and polymerization of some fluorinated styrenes. J Am Chem Soc. 1953, 75: 968-973.
Xu W, Liu C, Xue X, Su Y, Lv Y, Xing W, Lu T: New proton exchange membranes based on poly (vinyl alcohol) for DMFCs. Solid State Ion. 2004, 171: 121-127.
Tevlina AS, Ivankin AN, Korshak VV, Baranova NP, Nikitina TS, Rokhlin EM: Copolymerization of a, b, b-trifluorostyrene with some vinyl monomers. Viniti. 1981, 12: 127-181.
Karthikeyan CS, Nunes SP, Prado LASA, Ponce ML, Silva H, Ruffmann B, Schulte K: Polymer nanocomposite membranes for DMFC application. J Membr Sci. 2005, 254: 139-146.
Połtarzewski Z, Wieczorek W, Przyłuski J, Antonucci V: Novel proton conducting composite electrolytes for application in methanol fuel cells. Solid State Ion. 1999, 119: 301-304.
Silva VS, Ruffmann B, Silva H, Gallego YA, Mendes A, Madeira LM, Nunes SP: Proton electrolyte membrane properties and direct methanol fuel cell performance: I. Characterization of hybrid sulfonated poly(ether ether ketone)/zirconium oxide membranes. J Power Sources. 2005, 140: 34-40.
Wu H, Wang Y, Wang S: A methanol barrier polymer electrolyte membrane in direct methanol fuel cells. J New Mat Electr Sys. 2002, 5: 251-254.
Manea C, Mulder M: New polymeric electrolyte membranes based on proton donorproton acceptor properties for direct methanol fuel cells. Desalination. 2002, 147: 179-l 82.
Woo Y, Oh SY, Kang YS, Jung B: Synthesis and characterization of sulfonated polyimide membranes for direct methanol fuel cell. J Membr Sci. 2003, 220: 31-45.
Zhang X, Filho LP, Torras C, Valls RG: Experimental and computational study of proton and methanol permeabilities through composite membranes. J Power Sources. 2005, 145: 223-230.
Chakrabarty T, Kumar M, Shahi VK: Chitosan based membranes for separation, pervaporation and fuel cell applications Recent developments. biopolymers. Edited by: Elnashar MM. 2010, India: Sciyo, 201-226.
Yamada M, Honma I: Anhydrous proton conductive membrane consisting of chitosan. Electrochim Acta. 2005, 50: 2837-2841.
Lewandowski A, Skorupska K, Malinska J: Novel poly(vinyl alcohol)– KOH–H2O alkaline polymer electrolyte. Solid State Ion. 2000, 133: 265-271.
Xiong Y, Liu QL, Zhang QG, Zhu AM: Synthesis and characterization of cross-linked quaternized poly(vinyl alcohol)/chitosan composite anion exchange membranes for fuel cells. J Power Sources. 2008, 183: 447-453.
Wan Y, Creber KAM, Peppley B, Tam Bui V: Ionic conductivity of chitosan membranes. Polymer. 2003, 44: 1057-1065.
Wan Y, Creber KAM, Peppley B, Tam Bui V: Structure and ionic conductivity of a series of di-o-butyrylchitosan membranes. J Appl Polym Sci. 2004, 94: 2309-2323.
Wan Y, Creber KAM, Peppley B, Tam Bui V: Ionic conductivity and related properties of cross-linked chitosan membranes. J Appl Polym Sci. 2003, 89: 306-317.
Wan Y, Creber KAM, Peppley B, Tam Bui V: Synthesis, characterization and ionic conductive properties of phosphorylated chitosan membranes. Macromol Chem Phys. 2003, 204: 850-858.
Wang J, He R, Che Q: Anion exchange membranes based on semi interpenetrating polymer network of quaternized chitosan and polystyrene. J Colloid Interface Sci. 2011, 361: 219-225.
Mukoma P, Jooste BR, Vosloo HCM: Synthesis and characterization of cross-linked chitosan membranes for application as alternative proton exchange membrane materials in fuel cells. J Power Sources. 2004, 136: 16-23.
Du J, Bai Y, Chu W, Qiao L: The structure and electric characters of proton conducting chitosan membranes with various ammonium salts as complexant. J Polym Sci Part B: Polym Phys. 2010, 48: 880-885.
Ng LS, Mohamad AA: Protonic battery based on a plasticized chitosan–NH4NO3 solid polymer electrolyte. J Power Sources. 2006, 163: 382-385.
López-Chávez E, Oviedo-Roa R, Contreras-Pérez G, Martínez-Magadán JM, Castillo-Alvarado FL: Theoretical studies of ionic conductivity of cross-linked chitosan membranes. Int J Hydrogen Energy. 2010, 35: 12141-12146.
Smitha B, Sridhar S, Khan AA: Chitosan–poly (vinyl pyrrolidone) blends as membranes for direct methanol fuel cell applications. J Power Sources. 2006, 159: 846-854.
Choudhury NA, Ma J, Sahai Y, Buchheit RG: High performance polymer chemical hydrogel-based electrode binder materials for direct borohydride fuel cells. J Power Sources. 2011, 196: 5817-5822.
Klotzbach T, Watt M, Ansari Y, Minteer SD: Effects of hydrophobic modification of chitosan and Nafion on transport properties, ion-exchange capacities, and enzyme immobilization. J Membr Sci. 2006, 282: 276-283.
Klotzbach TL, Watt M, Ansari Y, Minteer SD: Improving the microenvironment for enzyme immobilization at electrodes by hydrophobically modifying chitosan and Nafion® polymers. J Membr Sci. 2008, 311: 81-88.
Wu B, Zhang Y, Kuang Y, Yu Y, Zhang X, Chen J: Chitosanfunctionalized carbon nanotubes as support for the high dispersion of PtRu nanoparticles and their electrocatalytic oxidation of methanol. Chem Asian J. 2012, 7: 190-195.
Wang D, Lu S, Xiang Y, Jiang SP: Self-assembly of HPW on Pt/C nanoparticles with enhanced electrocatalysis activity for fuel cell applications. Appl Catal B-Environ. 2011, 103: 311-317.
Deng L, Shang L, Wen D, Zhai J, Dong S: A membraneless biofuel cell powered by ethanol and alcoholic beverage. Biosens Bioelectron. 2010, 26: 70-73.
Falk B, Garramone S, Shivkumar S: Diffusion coefficient of paracetamol in a chitosan hydrogel. Mater Lett. 2004, 58: 3261-3265.
Liu Y, Wang M, Zhao F, Xu Z, Dong S: The direct electron transfer of glucose oxidase and glucose biosensor based on carbon nanotubes/chitosan matrix. Biosens Bioelectron. 2005, 21: 984-988.
Wei X, Cruz J, Gorski W: Integration of enzymes and electrodes: Spectroscopic and electrochemical studies of chitosan enzyme films. Anal Chem. 2002, 74: 5039-5046.
Cooney MJ, Lau C, Windmeisser M, Liaw BY, Klotzbach T, Minteer SD: Design of chitosan gel pore structure: Towards enzyme catalyzed flowthrough electrodes. J Mater Chem. 2008, 18: 667-674.
Higgins SR, Foerster D, Cheung A, Lau C, Bretschger O, Minteer SD: Fabrication of macroporous chitosan scaffolds doped with carbon nanotubes and their characterization in microbial fuel cell operation. Enzyme Microb Tech. 2011, 48: 458-465.
Higgins SR, Lau C, Atanassov P, Minteer SD, Cooney MJ: Hybrid biofuel cell: Microbial fuel cell with an enzymatic air-breathing cathode. ACS Catal. 2011, 1: 994-997.
Katuri K, Luisa Ferrer M, Gutierrez MC, Jimenez R, Monte F, Leech D: Three-dimensional microchanelled electrodes in flow-through configuration for bioanode formation and current generation. Energy Environ Sci. 2011, 4: 4201-4210.
Liu X, Sun X, Huang Y, Sheng G, Wang S, Yu H: Carbon nanotube/ chitosan nanocomposite as a biocompatible biocathode material to enhance the electricity generation of a microbial fuel cell. Energy Environ Sci. 2011, 4: 1422-1427.