2022
Bioelectrochemical methanation by utilization of steel mill off-gas in a two-chamber microbial electrolysis cell
SPIESS, Sabine, Sasiain Conde AMAIA, Jiří KUČERA, David NOVÁK, Sophie THALLNER et. al.Základní údaje
Originální název
Bioelectrochemical methanation by utilization of steel mill off-gas in a two-chamber microbial electrolysis cell
Autoři
SPIESS, Sabine (garant), Sasiain Conde AMAIA, Jiří KUČERA (203 Česká republika, domácí), David NOVÁK (203 Česká republika, domácí), Sophie THALLNER, Nina KIEBERGER, Georg M M GUEBITZ a Marianne HABERBAUER
Vydání
Frontiers in Bioengineering and Biotechnology, Laussane, Frontiers Media S.A. 2022, 2296-4185
Další údaje
Jazyk
angličtina
Typ výsledku
Článek v odborném periodiku
Obor
20801 Environmental biotechnology
Stát vydavatele
Švýcarsko
Utajení
není předmětem státního či obchodního tajemství
Odkazy
Impakt faktor
Impact factor: 5.700
Kód RIV
RIV/00216224:14310/22:00127472
Organizační jednotka
Přírodovědecká fakulta
UT WoS
000859093400001
Klíčová slova anglicky
bioelectrodes; metagenomic analysis; electromethanogenesis; microbial electrolysis cell; exhaust gas
Štítky
Příznaky
Mezinárodní význam, Recenzováno
Změněno: 17. 2. 2023 22:50, Mgr. Jiří Kučera, Ph.D.
Anotace
V originále
Carbon capture and utilization has been proposed as one strategy to combat global warming. Microbial electrolysis cells (MECs) combine the biological conversion of carbon dioxide (CO2) with the formation of valuable products such as methane. This study was motivated by the surprising gap in current knowledge about the utilization of real exhaust gas as a CO2 source for methane production in a fully biocatalyzed MEC. Therefore, two steel mill off-gases differing in composition were tested in a two-chamber MEC, consisting of an organic substrate-oxidizing bioanode and a methane-producing biocathode, by applying a constant anode potential. The methane production rate in the MEC decreased immediately when steel mill off-gas was tested, which likely inhibited anaerobic methanogens in the presence of oxygen. However, methanogenesis was still ongoing even though at lower methane production rates than with pure CO2. Subsequently, pure CO2 was studied for methanation, and the cathodic biofilm successfully recovered from inhibition reaching a methane production rate of 10.8 L m−2d−1. Metagenomic analysis revealed Geobacter as the dominant genus forming the anodic organic substrate-oxidizing biofilms, whereas Methanobacterium was most abundant at the cathodic methane-producing biofilms.
Návaznosti
ATCZ183, interní kód MU |
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