1 3
Topics in Current Chemistry (2018) 376:43
electrodes. ACS Appl Mater Interfaces 9(46):40978–40986. https ://doi.org/10.1021/acsam
i.7b122 95
7. Franco JH, Minteer SD, de Andrade AR (2018) Product analysis of operating an ethanol/O 2 biofuel cell shows the synergy between enzymes within an enzymatic cascade. J Electrochem Soc
165(9):H575–H579. https ://doi.org/10.1149/2.09318 09jes
8. Birmingham WR, Turner NJ (2018) A single enzyme oxidative “cascade” via a dual-functional
galactose oxidase. ACS Cat 8(5):4025–4032. https ://doi.org/10.1021/acsca tal.8b000 43
9. Williams KR, Gregory DP (1963) Electrolytes for low-temperature fuel cells. J Electrochem Soc
110(3):209–213. https ://doi.org/10.1149/1.24257 12
10. Du H, Zhao CX, Lin J, Guo J, Wang B, Hu Z, Shao Q, Pan D, Wujcik EK, Guo Z (2018) Carbon
nanomaterials in direct liquid fuel cells. Chem Rep 22:22. https ://doi.org/10.1002/tcr.20180 0008
11. Ong BC, Kamarudin SK, Basri S (2017) Direct liquid fuel cells: a review. Int J Hydrog Energy
42(15):10142–10157. https ://doi.org/10.1016/j.ijhyd ene.2017.01.117
12. Li Y, Feng Y, Sun X, He Y (2017) A sodium-ion-conducting direct formate fuel cell: generating
electricity and producing base. Angewandte Chemie 56(21):5734–5737. https ://doi.org/10.1002/
anie.20170 1816
13. Wang R, Wu M, Haller S, Métivier P, Wang Y, Xia Y (2018) Hypophosphites as eco-compatible
fuels for membrane-free direct liquid fuel cells. Chem Eur J 24(41):10310–10314. https ://doi.
org/10.1002/chem.20180 1888
14. Palmore GTR, Bertschy H, Bergens SH, Whitesides GM (1998) 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 443(1):155–161. https ://doi.org/10.1016/S0022 -0728(97)00393 -8
15. Sokic-Lazic D, Minteer SD (2009) Pyruvate/air enzymatic biofuel cell capable of complete oxidation. Electrochem Solid State Lett 12(9):F26–F28. https ://doi.org/10.1149/1.31709 04
16. Zhu Z, Sun F, Zhang X, Zhang YHP (2012) Deep oxidation of glucose in enzymatic fuel cells
through a synthetic enzymatic pathway containing a cascade of two thermostable dehydrogenases.
Biosens Bioelectron 36(1):110–115. https ://doi.org/10.1016/j.bios.2012.04.001
17. Zhu Z, Kin Tam T, Sun F, You C, Percival Zhang YH (2014) A high-energy-density sugar biobattery based on a synthetic enzymatic pathway. Nat Commun. https ://doi.org/10.1038/ncomm s4026
18. 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. https ://doi.org/10.1016/j.
elect acta.2017.11.083
19. Tasca F, Timur S, Ludwig R, Haltrich D, Volc J, Antiochia R, Gorton L (2007) Amperometric biosensors for detection of sugars based on the electrical wiring of different pyranose oxidases and
pyranose dehydrogenases with osmium redox polymer on graphite electrodes. Electroanalysis 19(2–
3):294–302. https ://doi.org/10.1002/elan.20060 3740
20. Habrioux A, Merle G, Servat K, Kokoh KB, Innocent C, Cretin M, Tingry S (2008) Concentric glucose/O 2 biofuel cell. J Electroanal Chem 622(1):97–102. https ://doi.org/10.1016/j.jelec
hem.2008.05.011
21. Shao M, Nadeem Zafar M, Sygmund C, Guschin DA, Ludwig R, Peterbauer CK, Schuhmann W,
Gorton L (2013) Mutual enhancement of the current density and the coulombic efficiency for a bioanode by entrapping bi-enzymes with Os-complex modified electrodeposition paints. Biosens Bioelectron 40(1):308–314. https ://doi.org/10.1016/j.bios.2012.07.069
22. Holade Y, Yuan M, Milton RD, Hickey DP, Sugawara A, Peterbauer CK, Haltrich D, Minteer SD (2017) Rational combination of promiscuous enzymes yields a versatile enzymatic fuel
cell with improved coulombic efficiency. J Electrochem Soc 164(3):H3073–H3082. https ://doi.
org/10.1149/2.01117 03jes
23. Beltrán-Prieto JC, Kolomazník K, Pecha J (2013) A review of catalytic systems for glycerol oxidation: alternatives for waste valorization. Aust J Chem 66(5):511–521. https ://doi.org/10.1071/
CH125 14
24. Sokic-Lazic D, Arechederra RL, Treu BL, Minteer SD (2010) Oxidation of biofuels: fuel diversity
and effectiveness of fuel oxidation through multiple enzyme cascades. Electroanalysis 22(7–8):757–
764. https ://doi.org/10.1002/elan.20098 0010
25. Arechederra RL, Minteer SD (2009) Complete oxidation of glycerol in an enzymatic biofuel cell.
Fuel Cells 9(1):63–69. https ://doi.org/10.1002/fuce.20080 0029
26. Arechederra RL, Treu BL, Minteer SD (2007) Development of glycerol/O 2 biofuel cell. J Power
Sources 173(1):156–161. https ://doi.org/10.1016/j.jpows our.2007.08.012
Reprinted from the journal
163
Topics in Current Chemistry (2018) 376:43
electrodes. ACS Appl Mater Interfaces 9(46):40978–40986. https ://doi.org/10.1021/acsam
i.7b122 95
7. Franco JH, Minteer SD, de Andrade AR (2018) Product analysis of operating an ethanol/O 2 biofuel cell shows the synergy between enzymes within an enzymatic cascade. J Electrochem Soc
165(9):H575–H579. https ://doi.org/10.1149/2.09318 09jes
8. Birmingham WR, Turner NJ (2018) A single enzyme oxidative “cascade” via a dual-functional
galactose oxidase. ACS Cat 8(5):4025–4032. https ://doi.org/10.1021/acsca tal.8b000 43
9. Williams KR, Gregory DP (1963) Electrolytes for low-temperature fuel cells. J Electrochem Soc
110(3):209–213. https ://doi.org/10.1149/1.24257 12
10. Du H, Zhao CX, Lin J, Guo J, Wang B, Hu Z, Shao Q, Pan D, Wujcik EK, Guo Z (2018) Carbon
nanomaterials in direct liquid fuel cells. Chem Rep 22:22. https ://doi.org/10.1002/tcr.20180 0008
11. Ong BC, Kamarudin SK, Basri S (2017) Direct liquid fuel cells: a review. Int J Hydrog Energy
42(15):10142–10157. https ://doi.org/10.1016/j.ijhyd ene.2017.01.117
12. Li Y, Feng Y, Sun X, He Y (2017) A sodium-ion-conducting direct formate fuel cell: generating
electricity and producing base. Angewandte Chemie 56(21):5734–5737. https ://doi.org/10.1002/
anie.20170 1816
13. Wang R, Wu M, Haller S, Métivier P, Wang Y, Xia Y (2018) Hypophosphites as eco-compatible
fuels for membrane-free direct liquid fuel cells. Chem Eur J 24(41):10310–10314. https ://doi.
org/10.1002/chem.20180 1888
14. Palmore GTR, Bertschy H, Bergens SH, Whitesides GM (1998) 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 443(1):155–161. https ://doi.org/10.1016/S0022 -0728(97)00393 -8
15. Sokic-Lazic D, Minteer SD (2009) Pyruvate/air enzymatic biofuel cell capable of complete oxidation. Electrochem Solid State Lett 12(9):F26–F28. https ://doi.org/10.1149/1.31709 04
16. Zhu Z, Sun F, Zhang X, Zhang YHP (2012) Deep oxidation of glucose in enzymatic fuel cells
through a synthetic enzymatic pathway containing a cascade of two thermostable dehydrogenases.
Biosens Bioelectron 36(1):110–115. https ://doi.org/10.1016/j.bios.2012.04.001
17. Zhu Z, Kin Tam T, Sun F, You C, Percival Zhang YH (2014) A high-energy-density sugar biobattery based on a synthetic enzymatic pathway. Nat Commun. https ://doi.org/10.1038/ncomm s4026
18. 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. https ://doi.org/10.1016/j.
elect acta.2017.11.083
19. Tasca F, Timur S, Ludwig R, Haltrich D, Volc J, Antiochia R, Gorton L (2007) Amperometric biosensors for detection of sugars based on the electrical wiring of different pyranose oxidases and
pyranose dehydrogenases with osmium redox polymer on graphite electrodes. Electroanalysis 19(2–
3):294–302. https ://doi.org/10.1002/elan.20060 3740
20. Habrioux A, Merle G, Servat K, Kokoh KB, Innocent C, Cretin M, Tingry S (2008) Concentric glucose/O 2 biofuel cell. J Electroanal Chem 622(1):97–102. https ://doi.org/10.1016/j.jelec
hem.2008.05.011
21. Shao M, Nadeem Zafar M, Sygmund C, Guschin DA, Ludwig R, Peterbauer CK, Schuhmann W,
Gorton L (2013) Mutual enhancement of the current density and the coulombic efficiency for a bioanode by entrapping bi-enzymes with Os-complex modified electrodeposition paints. Biosens Bioelectron 40(1):308–314. https ://doi.org/10.1016/j.bios.2012.07.069
22. Holade Y, Yuan M, Milton RD, Hickey DP, Sugawara A, Peterbauer CK, Haltrich D, Minteer SD (2017) Rational combination of promiscuous enzymes yields a versatile enzymatic fuel
cell with improved coulombic efficiency. J Electrochem Soc 164(3):H3073–H3082. https ://doi.
org/10.1149/2.01117 03jes
23. Beltrán-Prieto JC, Kolomazník K, Pecha J (2013) A review of catalytic systems for glycerol oxidation: alternatives for waste valorization. Aust J Chem 66(5):511–521. https ://doi.org/10.1071/
CH125 14
24. Sokic-Lazic D, Arechederra RL, Treu BL, Minteer SD (2010) Oxidation of biofuels: fuel diversity
and effectiveness of fuel oxidation through multiple enzyme cascades. Electroanalysis 22(7–8):757–
764. https ://doi.org/10.1002/elan.20098 0010
25. Arechederra RL, Minteer SD (2009) Complete oxidation of glycerol in an enzymatic biofuel cell.
Fuel Cells 9(1):63–69. https ://doi.org/10.1002/fuce.20080 0029
26. Arechederra RL, Treu BL, Minteer SD (2007) Development of glycerol/O 2 biofuel cell. J Power
Sources 173(1):156–161. https ://doi.org/10.1016/j.jpows our.2007.08.012
Reprinted from the journal
163
