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and chemical production in cyanobacteria. Nat Commun 8:14724
60. Atsumi S, Higashide W, Liao JC (2009) Direct photosynthetic recycling of carbon dioxide to
isobutyraldehyde. Nat Biotech 27:1177–1180
61. https://www.photanol.com/
62. https://phytonix.com/
63. https://www.novamont.com/eng/read-press-release/mater-biotech/
64. https://www.grandviewresearch.com/industry-analysis/1-4-butanediol-market
65. https://bioenergyinternational.com/research-development/30229
66. Kondaveeti S, Kakarla R, Kim HS, Kim BG, Min B (2017) The performance and long-term
stability of low-cost separators in single-chamber bottle-type microbial fuel cells. Environ
Technol 1–10
67. Rozendal RA, Hamelers HV, Rabaey K, Keller J, Buisman CJ (2008) Towards practical
implementation of bioelectrochemical wastewater treatment. Trends Biotechnol 26(8):450–
459
68. Lovley DR, Nevin KP (2013) Electrobiocommodities: powering microbial production of fuels
and commodity chemicals from carbon dioixde with electricity. Curr Opin Biotechnol
24:385–390
69. Blankenship RE, Tiede DM, Barber J, Brudvig GW, Fleming G, Ghirardi M, Gunner MR,
Junge W, Kramer DM, Melis A, Moore TA, Moser CC, Nocera DG, Nozik AJ, Ort DR,
Parson WW, Prince RC, Sayre RT (2011) Comparing photosynthetic and photovoltaic
efficiencies and recognizing the potential for improvement. Science 332:805–809
70. Chiranjeevi P, Bulut M, Breugelmans T, Patil SA, Pant D (2019) Current trends in enzymatic
electrosynthesis for CO 2 reduction. Curr Opin Green Sustain Chem 16:65–70
71. Huang YX, Hu Z (2018) An integrated electrochemical and biochemical system for sequential
reduction of CO 2 to methane. Fuel 220:8–13
72. Villano M, Aulenta F, Ciucci C, Ferri T, Giuliano A, Majone M (2010) Bioelectrochemical
reduction of CO 2 to CH 4 via direct and indirect extracellular electron transfer by a
hydrogenophilic methanogenic culture. Bioresour Technol 101(9):3085–3090
73. Feng Q, Song YC, Ahn Y (2018) Electroactive microorganisms in bulk solution contribute
significantly to methane production in bioelectrochemical anaerobic reactor. Bioresour
Technol 259:119–127
74. Liu D, Roca‐Puigros M, Geppert F, Caizan-Juanarena L, Na Ayudthaya SP, Buisman C, ter
Heijne A (2018) Granular carbon‐based electrodes as cathodes in methane‐producing
bioelectrochemical systems. Front Bioeng Biotechnol 6:1–10
75. Zhen G, Zheng S, Lu X, Zhu X, Mei J, Kobayashi T, Xu K, Li YY, Zhao Y (2018) A
comprehensive comparison of five different carbon-based cathode materials in CO2
electromethanogenesis: long-term performance, cell-electrode contact behaviors and extracellular electron transfer pathways. Bioresour Technol 266:382–388
76. Zeppilli M, Chouchane H, Scardigno L, Mahjoubi M, Gacitua M, Askri R, Majone M (2020)
Bioelectrochemical vs hydrogenophilic approach for CO 2 reduction into methane and acetate.
Chem Eng J 125243
77. Yuan M, Kummer MJ, Minteer SD (2019) Strategies for bioelectrochemical CO 2 reduction.
Chem Eur J 25(63):14258–14266
78. Batlle-Vilanova P, Rovira-Alsina L, Puig S, Dolors Balaguer M, Icaran P, Monsalvo VM,
Rogalla F, Colprim J (2019) Biogas upgrading, CO 2 valorisation and economic revaluation of
bioelectrochemical systems through anodic chlorine production in the framework of
wastewater treatment plants. Sci Total Environ 690:352–360
79. De Godos I, Cano R, Santiago JR, Lara E, Llamas B (2015) Device and method for
simultaneous removal of hydrogen sulphide and carbon dioxide from biogas. EP 3061515 A1
80. Batlle-Vilanova P, Puig S, Gonzalez-Olmos R, Balaguer MD, Colprim J (2016) Continuous
acetate production through microbial electrosynthesis from CO 2 with microbial mixed culture.
J Chem Technol Biotechnol 91(4):921–927
References
217
