4.8 Article

Dual gas-diffusion membrane- and mediatorless dihydrogen/air-breathing biofuel cell operating at room temperature

Journal

JOURNAL OF POWER SOURCES
Volume 335, Issue -, Pages 105-112

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.jpowsour.2016.10.030

Keywords

Biofuel cell; Direct electron transfer; Bioelectrocatalysis; Gas-diffusion

Funding

  1. Japan Science and Technology Agency, CREST
  2. scholarship of the Ministry of Education, Culture, Sports, Science and Technology, Japan [201308210170]
  3. Japan Society for the Promotion of Science for Young Scientists [15J02900]
  4. Grants-in-Aid for Scientific Research [15J02900] Funding Source: KAKEN

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A membraneless direct electron transfer (DET)-type dihydrogen (H-2)/air-breathing biofuel cell without any mediator was constructed wherein bilirubin oxidase from Myrothecium verrucaria (BOD) and membrane-bound [NiFe] hydrogenase from Desulfovibrio vulgaris Miyazaki F (MBH) were used as biocatalysts for the cathode and the anode, respectively, and Ketjen black-modified water proof carbon paper (KB/WPCC) was used as an electrode material. The KB/WPCC surface was modified with 2-aminobenzoic acid and p-phenylenediamine, respectively, to face the positively charged electron accepting site of BOD and the negatively charged electron-donating site of MBH to the electrode surface. A gas-diffusion system was employed for the electrodes to realize high-speed substrate supply. As result, great improvement in the current density of O2 reduction with BOD and H-2 reduction with MBH were realized at negatively and postively charged surfaces, respectively. Gas diffusion system also suppressed the oxidative inactivation of MBH at high electrode potentials. Finally, based on the improved bioanode and biocathode, a dual gas-diffusion membrane- and mediatorless H-2/air-breathing biofuel cell was constructed. The maximum power density reached 6.1 mW cm(-2) (at 0.72 V), and the open circuit voltage was 1.12 V using 1 atm of H-2 gas as a fuel at room temperature and under passive and quiescent conditions. (C) 2016 Elsevier B.V. All rights reserved.

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