References
129
32. So K, Kitazumi Y, Shirai O, Kurita K, Nishihara H, Higuchi Y, Kano K (2014) Kinetic analysis
of inactivation and enzyme reaction of oxygen-tolerant [NiFe]-hydrogenase at direct electrontransfer bioanode. Bull Chem Soc Jpn 87:1177–1185
33. Fourmond V, Stapf S, Li H, Buesen D, Birrell J, Rüdiger O, Lubitz W, Schuhmann W, Plumeré
N, Léger C (2015) Mechanism of protection of catalysts supported in redox hydrogel films. J
Am Chem Soc 137:5494–5505
34. Plumeré N, Rüdiger O, Oughli AA, Williams R, Vivekananthan J, Pöller S, Schuhmann W,
Lubitz W (2014) A redox hydrogel protects hydrogenase from high-potential deactivation and
oxygen damage. Nat Chem 6:822–827
35. So K, Sakai K, Kano K (2017) Gas diffusion bioelectrodes. Curr Opin Electrochem 5:173–182
36. Kitazumi Y, Kano K, Bioelectrochemical and reversible interconversion in the proton/hydrogen
and carbon dioxide/formate redox systems and its significance in future energy systems. In:
Shiii M, Wakai S (eds) Electron-based bioscience and biotechnology, Chap. 7, Spring, Berlin,
in press
37. Enthaler S, von Langermann J, Schmidt T (2010) Carbon dioxide and formic acid—the couple
for environmental-friendly hydrogen storage? Energy Environ Sci 3:1207–1217
38. Asefa T, Koh K, Yoon CW (2019) CO 2 -mediated H 2 storage-release with nanostructured
catalysis: recent progress, challenges, and perspectives. Adv Energy Mater 9:1901158
39. Deng L, Shang L, Wen D, Zhai J, Dong S (2010) A Membraneless biofuel cell powered by
ethanol and alcoholic beverage. Biosens Bioelectron 26:70–73
40. Palmore GTR, Bertschy H, Bergens SH, Whitesides GM (1998) A methanol/dioxygen biofuel
cell that uses NAD(+)-dependent dehydrogenases as catalysts: application of an electroenzymatic method to regenerate nicotinamide adenine dinucleotide at low overpotentials. J
Electroanal Chem 443:155–161
41. Sakai H, Nakagawa T, Mita H, Kumita H, Tokita Y (2010) Evolution of Sony’s biofuel cell.
In: 217th ECS Meeting, p 396
42. Zhu Z, Ma C, Percival Zhang YH (2018) Co-utilization of mixed sugars in an enzymatic fuel
cell based on an in vitro enzymatic pathway. Electrochim Acta 263:184–191
43. Macazo FC, Minteer SD (2017) Enzyme cascades in biofuel cells. Curr Opin Electrochem
5:114–120
44. Sugimoto Y, So K, Xia H, Kano K (2018) Orientation-oriented adsorption and immobilization
of redox enzymes for electrochemical communication with electrodes. In: Wandelt K (ed) Encyclopedia of interfacial chemistry: surface science and electrochemistry. Elsevier, Amsterdam,
pp 403–421
45. Hitaishi V, Clement R, Bourassin N, Baaden M, de Poulpiquet A, Sacquin-Mora S, Ciaccafava
A, Lojou E (2018) Controlling redox enzyme orientation at planar electrodes. Catalysts 8:192
46. Sugimoto Y, Kitazumi Y, Shirai O, Kano K (2017) Effects of mesoporous structures on direct
electron transfer-type bioelectrocatalysis: facts and simulation on a three-dimensional model
of random orientation of enzymes. Electrochemistry 85:82–87
47. Sugimoto Y, Takeuchi R, Kitazumi Y, Shirai O, Kano K (2016) Significance of mesoporous
electrodes for noncatalytic faradaic process of randomly oriented redox proteins. J Phys Chem
C 120:26270–26277
48. Kano K, Ikeda T (2000) Fundamentals and practices of mediated bioelectrocatalysis. Anal Sci
16:1013–1021
49. Hanashi T, Yamazaki T, Tsugawa W, Ferri S, Nakayama D, Tomiyama M, Ikebukuro K, Sode
K (2009) BioCapacitor—a novel category of biosensor. Biosens Bioelectron 24:1837–1842
50. Pankratov D, Blum Z, Shleev S (2014) Hybrid electric power biodevices. ChemElectroChem
1:1798–1807
51. Sode K, Yamazaki T, Lee I, Hanashi T, Tsugawa W (2016) BioCapacitor: a novel principle for
biosensors. Biosens Bioelectron 76:20–28
52. Shleev S, González-Arribas E, Falk M (2017) Biosupercapacitors. Curr Opin Electrochem
5:226–233
53. Pankratov D, Conzuelo F, Pinyou P, Alsaoub S, Schuhmann W, Shleev SA (2016) Nernstian
Biosupercapacitor. Angew Chem Int Ed 55:15434–15438
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