130
7 Applications to Biofuel Cells and Bioreactors
54. Haehnel W, Hochheimer HJ (1979) On the current generated by a galvanic cell driven by
photosynthetic electron transport. Bioelectrochem Bioenerg 6:563–574
55. Okano M, Iida T, Shinohara H, Kobayashi H (1984) Water photolysis by a photoelectrochemical
cell using an immobilized chloroplasts-methyl viologen system. Agric Biol Chem 48:1977–
1983
56. Hill HAO, Walton NJ, Whitford D (1985) The coupling of heterogeneous electron transfer to
photosystem–1. J Electroanal Chem 187:109–119
57. Lemieux S, Carpentier R, Allen H, Hill O, Walton NJ, Whitford D (2001) Properties of a
photosystem II preparation in a photochemical cell. J Electroanal Chem 496:109–119
58. Martens N, Hall EAH (1994) Diaminodurene as a mediator of a photocurrent using intact cells
of cyanobacteria. Photochem Photobiol 59:91–98
59. Torimura M, Miki A, Wadano A, Kano K, Ikeda T (2001) Electrochemical investigation of
Cyanobacteria Synechococcus sp. PCC7942-catalyzed photoreduction of Exogenous Quinones
and photoelectrochemical oxidation of water. J Electroanal Chem 496:21–28
60. Tsujimura S, Fujita F, Tatsumi H, Kano K, Ikeda T (2001) Bioelectrocatalysis-based dihydrogen/dioxygen fuel cell operating at physiological pH. Phys Chem Chem Phys 3:1331–1335
61. Mimcault M, Carpentier R (1989) Kinetics of photocurrent induction by a thylakoid containing
electrochemical cell. J Electroanal Chem 276:145–158
62. Carpentier R, Lemieux S, Mimeault M, Purcell M, Goetze DC (1989) A Photoelectrochemical
cell using immobilized photosynthetic membranes. J Electroanal Chem 276:391–401
63. Hasan K, Dilgin Y, Emek SC, Tavahodi M, Akerlund HE, Albertsson P, Gorton L (2014) Photoelectrochemical communication between thylakoid membranes and gold electrodes through
different quinone derivatives. ChemElectroChem 1:131–139
64. Takeuchi R, Suzuki A, Sakai K, Kitazumi Y, Shirai O, Kano K (2018) Construction of
photo-driven bioanodes using thylakoid membranes and multi-walled carbon nanotubes.
Bioelectrochemistry 122:158–163
65. Adachi T, Kataoka K, Kitazumi Y, Shirai O, Kano K (2019) A bio-solar cell with thylakoid
membranes and bilirubin oxidase. Chem Lett 48:686–689
66. Armstrong FA, Hirst J (2011) Reversibility and efficiency in electrocatalytic energy conversion
and lessons from enzymes. Proc Natl Acad Sci 108:14049–14054
67. Milton RD, Cai R, Abdellaoui S, Leech D, De Lacey AL, Pita M, Minteer SD (2017) Bioelectrochemical Haber-Bosch process: an ammonia-producing H 2 /N 2 fuel cell. Angew Chem Int
Ed 56:2680–2683
68. Sakai K, Sugimoto Y, Kitazumi Y, Shirai O, Takagi K, Kano K (2017) Direct electron transfertype bioelectrocatalytic interconversion of carbon dioxide/formate and NAD(+)/NADH redox
couples with tungsten-containing formate dehydrogenase. Electrochim Acta 228:537–544
69. Reda T, Plugge CM, Abram NJ, Hirst J (2008) Reversible interconversion of carbon dioxide
and formate by an electroactive enzyme. Proc Natl Acad Sci 105:10654–10658
70. Bassegoda A, Madden C, Wakerley DW, Reisner E, Hirst J (2014) Reversible interconversion
of CO 2 and formate by a molybdenum–containing formate dehydrogenase. J Am Chem Soc
136:15473–15476
71. Siritanaratkul B, Megarity CF, Roberts TG, Samuels TOM, Winkler M, Warner JH, Happe
T, Armstrong FA (2017) Transfer of photosynthetic NADP + /NADPH recycling activity to a
porous metal oxide for highly specific, electrochemically–driven organic synthesis. Chem Sci
8:4579–4586
72. Wan L, Megarity CF, Siritanaratkul B, Armstrong FA (2018) A Hydrogen fuel cell for rapid,
enzyme–catalysed organic synthesis with continuous monitoring. Chem Commun 54:972–975
73. Adachi T, Kitazumi Y, Shirai O, Kano K (2018) Construction of a bioelectrochemical formate
generating system from carbon dioxide and dihydrogen. Electrochem Commun 97:73–76
74. Shomura Y, Taketa M, Nakashima H, Tai H, Nakagawa H, Ikeda Y, Ishii M, Igarashi Y, Nishihara
H, Yoon KS et al (2017) Structural basis of the redox switches in the NAD + –reducing Soluble
[NiFe]–hydrogenase. Science 357:928–938
75. Kano K, Takagi K, Ogino Y, Ikeda T (1995) Quinone–mediated bioelectrochemical reduction
of NAD(P) + catalyzed by flavoproteins. Chem Lett 24:589–590
7 Applications to Biofuel Cells and Bioreactors
54. Haehnel W, Hochheimer HJ (1979) On the current generated by a galvanic cell driven by
photosynthetic electron transport. Bioelectrochem Bioenerg 6:563–574
55. Okano M, Iida T, Shinohara H, Kobayashi H (1984) Water photolysis by a photoelectrochemical
cell using an immobilized chloroplasts-methyl viologen system. Agric Biol Chem 48:1977–
1983
56. Hill HAO, Walton NJ, Whitford D (1985) The coupling of heterogeneous electron transfer to
photosystem–1. J Electroanal Chem 187:109–119
57. Lemieux S, Carpentier R, Allen H, Hill O, Walton NJ, Whitford D (2001) Properties of a
photosystem II preparation in a photochemical cell. J Electroanal Chem 496:109–119
58. Martens N, Hall EAH (1994) Diaminodurene as a mediator of a photocurrent using intact cells
of cyanobacteria. Photochem Photobiol 59:91–98
59. Torimura M, Miki A, Wadano A, Kano K, Ikeda T (2001) Electrochemical investigation of
Cyanobacteria Synechococcus sp. PCC7942-catalyzed photoreduction of Exogenous Quinones
and photoelectrochemical oxidation of water. J Electroanal Chem 496:21–28
60. Tsujimura S, Fujita F, Tatsumi H, Kano K, Ikeda T (2001) Bioelectrocatalysis-based dihydrogen/dioxygen fuel cell operating at physiological pH. Phys Chem Chem Phys 3:1331–1335
61. Mimcault M, Carpentier R (1989) Kinetics of photocurrent induction by a thylakoid containing
electrochemical cell. J Electroanal Chem 276:145–158
62. Carpentier R, Lemieux S, Mimeault M, Purcell M, Goetze DC (1989) A Photoelectrochemical
cell using immobilized photosynthetic membranes. J Electroanal Chem 276:391–401
63. Hasan K, Dilgin Y, Emek SC, Tavahodi M, Akerlund HE, Albertsson P, Gorton L (2014) Photoelectrochemical communication between thylakoid membranes and gold electrodes through
different quinone derivatives. ChemElectroChem 1:131–139
64. Takeuchi R, Suzuki A, Sakai K, Kitazumi Y, Shirai O, Kano K (2018) Construction of
photo-driven bioanodes using thylakoid membranes and multi-walled carbon nanotubes.
Bioelectrochemistry 122:158–163
65. Adachi T, Kataoka K, Kitazumi Y, Shirai O, Kano K (2019) A bio-solar cell with thylakoid
membranes and bilirubin oxidase. Chem Lett 48:686–689
66. Armstrong FA, Hirst J (2011) Reversibility and efficiency in electrocatalytic energy conversion
and lessons from enzymes. Proc Natl Acad Sci 108:14049–14054
67. Milton RD, Cai R, Abdellaoui S, Leech D, De Lacey AL, Pita M, Minteer SD (2017) Bioelectrochemical Haber-Bosch process: an ammonia-producing H 2 /N 2 fuel cell. Angew Chem Int
Ed 56:2680–2683
68. Sakai K, Sugimoto Y, Kitazumi Y, Shirai O, Takagi K, Kano K (2017) Direct electron transfertype bioelectrocatalytic interconversion of carbon dioxide/formate and NAD(+)/NADH redox
couples with tungsten-containing formate dehydrogenase. Electrochim Acta 228:537–544
69. Reda T, Plugge CM, Abram NJ, Hirst J (2008) Reversible interconversion of carbon dioxide
and formate by an electroactive enzyme. Proc Natl Acad Sci 105:10654–10658
70. Bassegoda A, Madden C, Wakerley DW, Reisner E, Hirst J (2014) Reversible interconversion
of CO 2 and formate by a molybdenum–containing formate dehydrogenase. J Am Chem Soc
136:15473–15476
71. Siritanaratkul B, Megarity CF, Roberts TG, Samuels TOM, Winkler M, Warner JH, Happe
T, Armstrong FA (2017) Transfer of photosynthetic NADP + /NADPH recycling activity to a
porous metal oxide for highly specific, electrochemically–driven organic synthesis. Chem Sci
8:4579–4586
72. Wan L, Megarity CF, Siritanaratkul B, Armstrong FA (2018) A Hydrogen fuel cell for rapid,
enzyme–catalysed organic synthesis with continuous monitoring. Chem Commun 54:972–975
73. Adachi T, Kitazumi Y, Shirai O, Kano K (2018) Construction of a bioelectrochemical formate
generating system from carbon dioxide and dihydrogen. Electrochem Commun 97:73–76
74. Shomura Y, Taketa M, Nakashima H, Tai H, Nakagawa H, Ikeda Y, Ishii M, Igarashi Y, Nishihara
H, Yoon KS et al (2017) Structural basis of the redox switches in the NAD + –reducing Soluble
[NiFe]–hydrogenase. Science 357:928–938
75. Kano K, Takagi K, Ogino Y, Ikeda T (1995) Quinone–mediated bioelectrochemical reduction
of NAD(P) + catalyzed by flavoproteins. Chem Lett 24:589–590
