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82. Aresta M, Dibenedetto A, Baran T, Angelini A, Łabuz P, Macyk W (2014) An integrated
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84. Schlager S, Dibenedetto A, Aresta M, Apaydin DH, Dumitru LM, Neugebauer H,
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85. Bajracharya S, van den Burg B, Vanbroekhoven K, De Wever H, Buisman CJ, Pant D,
Strik DP (2017) In situ acetate separation in microbial electrosynthesis from CO2 using
ion-exchange resin. Electrochim Acta 237:267–275
86. Aryal N, Wan L, Overgaard MH, Stoot AC, Chen Y, Tremblay PL, Zhang T (2019) Increased
carbon dioxide reduction to acetate in a microbial electrosynthesis reactor with a reduced
graphene oxide-coated copper foam composite cathode. Bioelectrochemistry 128:83–93
87. Morinaga T, Kawada N (1990) The production of acetic acid from carbon dioxide and
hydrogen by an anaerobic bacterium. J Biotechnol 14(2):187–194
88. López-Garzón CS, Straathof AJJ (2014) Recovery of carboxylic acids produced by
fermentation. Biotechnol Adv 32:873–904
218
11 Enhancing Nature
in artificial photosynthesis. Trends Biotechnol 35(4):285–287
82. Aresta M, Dibenedetto A, Baran T, Angelini A, Łabuz P, Macyk W (2014) An integrated
photocatalytic-enzymatic system for the reduction of CO 2 to methanol in bio-glycerol-water.
Beilstein J Org Chem 10:2556–2565
83. Aresta M, Dibenedetto A, Macyk W, Baran T (2013) Photocatalysts working in the visible
region for the reduction of NAD
+ to NADH within an hybrid chemo-enzymatic process of
CO 2 reduction to methanol. MI2013A001135
84. Schlager S, Dibenedetto A, Aresta M, Apaydin DH, Dumitru LM, Neugebauer H,
Sariciftci NS (2017) Biocatalytic and bioelectrocatalytic approaches for the reduction of
carbon dioxide using enzymes. Energy Technol 5(6):812–821
85. Bajracharya S, van den Burg B, Vanbroekhoven K, De Wever H, Buisman CJ, Pant D,
Strik DP (2017) In situ acetate separation in microbial electrosynthesis from CO2 using
ion-exchange resin. Electrochim Acta 237:267–275
86. Aryal N, Wan L, Overgaard MH, Stoot AC, Chen Y, Tremblay PL, Zhang T (2019) Increased
carbon dioxide reduction to acetate in a microbial electrosynthesis reactor with a reduced
graphene oxide-coated copper foam composite cathode. Bioelectrochemistry 128:83–93
87. Morinaga T, Kawada N (1990) The production of acetic acid from carbon dioxide and
hydrogen by an anaerobic bacterium. J Biotechnol 14(2):187–194
88. López-Garzón CS, Straathof AJJ (2014) Recovery of carboxylic acids produced by
fermentation. Biotechnol Adv 32:873–904
218
11 Enhancing Nature
