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Articles

Flexible biofuel cell with electrodes modified by glucose oxidase-ferrocene and bilirubin oxidase fabricated using microfabrication processes

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Pages 159-170 | Received 23 Apr 2014, Accepted 24 May 2014, Published online: 19 Sep 2014

References

  • Wei X, Liu J. Power sources and electrical recharging strategies for implantable medical devices. Front Energy Power Eng China. 2008;2:1–13.
  • Tsai N, Sue C. Review of MEMS-based drug delivery and dosing systems. Sens Actuators A. 2007;134:555–564.
  • Tokita Y, Nakagawa T, Sakai H, Sugiyama T, Matsumoto R, Hatazawa T. Sony's biofuel cell. ECS Trans. 2008;13:89–97.
  • Katz E, Buckmann AF, Willner I. Self-powered enzyme-based biosensors. J Am Chem Soc. 2001;123:10752–10753.
  • Heller A. Miniature biofuel cells. Phys Chem Chem Phys. 2004;6:209–216.
  • Mano N, Mao F, Heller A. Characteristics of a miniature compartment-less glucose-O2 biofuel cell and its operation in a living plant. J Am Chem Soc. 2003;125:6588–6594.
  • Mano N, Mao F, Shin W, Chen T, Heller A. A miniature biofuel cell operating at 0.78 V. Chem Commun. 2003;4:518–519.
  • Moore CM, Minteer SD, Martin RS. Microchip-based ethanol/oxygen biofuel cell. Lab Chip. 2005;5:218–225.
  • Heller A. Integrated medical feedback systems for drug delivery. AIChE J. 2005; 51:1054–1066.
  • Sato F, Togo M, Islam MK, Matsue T, Kosuge J, Fukasaku N, Kurosawa S, Nishizawa M. Enzyme-based glucose fuel cell using vitamin K3-immobilized polymer as an electron mediator. Electrochem Commun. 2005;7:643–647.
  • Togo M, Takamura A, Asai T, Kaji H, Nishizawa M. An enzyme-based microfluidic biofuel cell using vitamin K3-mediated glucose oxidation. Electrochimica Acta. 2007;52:4669–4674.
  • Togo M, Takamura A, Asai T, Kaji H, Nishizawa M. Structural studies of enzyme-based microfluidic biofuel cells. J Power Source. 2008;178:53–58.
  • Lim KG, Palmore GTR. Microfluidic biofuel cells: the influence of electrode diffusion layer on performance. Biosens Bioelectron. 2007;22:941–947.
  • Tsujimura S, Fujita M, Tatsumi H, Kano K, Ikeda T. Bioelectrocatalysis-based dihydrogen/dioxygen fuel cell operating at physiological pH. Phys Chem Chem Phys. 2001;3:1331–1335.
  • Tsujimura S, Kano K, Ikeda T. Glucose/O2 biofuel cell operating at physiological conditions. Electrochemistry. 2002;70:940–942.
  • Kamitaka Y, Tsujimura S, Setoyama N, Kajino T, Kano K. Fructose/dioxygen biofuel cell based on direct electron transfer-type bioelectrocatalysis. Phys Chem Chem Phys. 2007;9:1793–1801.
  • Chen T, Barton SC, Binyamin G, Gao ZQ, Zhang YC, Kim HH, Heller A. A miniature biofuel cell. J Am Chem Soc. 2001;123:8630–8631.
  • Palmore GTR, Bertschy H, Bergens SH, Whitesides GM. A methanol/dioxygen biofuel cell that uses NAD+-dependent dehydrogenases as catalysts: application of an electro-enzymatic method to regenerate nicotinamide adenine dinucleotide at low overpotentials. J Electroanal Chem. 1998;443:155–161.
  • Tamaki T, Ito T, Yamaguchi T. Immobilization of hydroquinone through a spacer to polymer grafted on carbon black for a high-surface-area biofuel cell electrode. J Phys Chem B. 2007;111:10312–10319.
  • Fukushi Y, Koide S, Ikoma R, Akatsuka W, Tsujimura S, Nishioka Y. Fabrication and characterization of glucose fuel cells with microchannels fabricated on flexible polyimide film. J Photopolymer Sci Technol. 2013;26:303–308.
  • Youn SW, Noguchi T, Takahashi M, Maeda R. Fabrication of micro mold for hot-embossing of polyimide microfluidic platform by using electron beam lithography combined with inductively coupled plasma. Microelectron Eng. 2008;85:918–921.
  • Becker H, Heim U. Hot embossing as a method for the fabrication of polymer high aspect ratio structures. Sens Actuators A. 2000;83:130–135.
  • Kontani R, Tsujimura S, Kano N. Air diffusion biocathode with CueO as electrocatalyst adsorbed on carbon particle-modified electrodes. Bioelectrochemistry. 2009;76:10–13.
  • Kuwahara T, Ohta H, Kondo M, Shimomura M. Immobilization of glucose oxidase on carbon paper electrodes modified with conducting polymer and its application to a glucose fuel cell. Bioelectrochemistry. 2008;74:66–72.
  • Ohara TJ, Rajagopalan R, Heller A. Glucose electrodes based on cross-linked bis(2,2’-bipyridine)chloroosmium(+/2+) complexed poly(1-vinylimidazole) films. Anal Chem. 1993;65:3512–3517.
  • Tsujimura S, Kano K, Ikeda T. Bilirubin oxidase in multiple layers catalyzes four-electron reduction of dioxygen to water without redox mediators. J Electroanalytical Chem. 2005;576:113–120.
  • Tsujimura S, Nakagawa T, Kano K, Ikeda T. Kinetic study of direct bioelectrocatalysis of dioxygen reduction with bilirubin oxidase at carbon electrodes. Electrochemistry. 2004;72:437–439.
  • Kamitaka Y, Tsujimura S, Kataoka K, Sakurai T, Ikeda T, Kano K. Effects of axial ligand mutation of the type I copper site in bilirubin oxidase on direct electron transfer-type bioelectrocatalytic reduction of dioxygen. J Electroanalytical Chem. 2007;601:119–124.
  • Tominaga M, Otani M, Kishikawa M, Taniguchi I. UV–ozone treatments improved carbon black surface for direct electron-transfer reactions with bilirubin oxidase under aerobic conditions. Chem Lett. 2006;35:1174–1175.

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