Unraveling the effect of redox potential on dark fermentative hydrogen production

Biological hydrogen production by dark fermentation is an environmentally benign alternative to the conventional fossil-based hydrogen production process. However, low biological hydrogen yields remain a major constraint to commercial production. Unraveling the metabolic pathway for hydrogen product...

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Published in:Renewable and Sustainable Energy Reviews
Main Author: Sim X.Y.; Tan J.P.; He N.; Yeap S.K.; Hui Y.W.; Luthfi A.A.I.; Manaf S.F.A.; Bukhari N.A.; Jamali N.S.
Format: Review
Language:English
Published: Elsevier Ltd 2023
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85171651317&doi=10.1016%2fj.rser.2023.113755&partnerID=40&md5=ce97004ac7c1be7b5c9a15fe3df9e9eb
id 2-s2.0-85171651317
spelling 2-s2.0-85171651317
Sim X.Y.; Tan J.P.; He N.; Yeap S.K.; Hui Y.W.; Luthfi A.A.I.; Manaf S.F.A.; Bukhari N.A.; Jamali N.S.
Unraveling the effect of redox potential on dark fermentative hydrogen production
2023
Renewable and Sustainable Energy Reviews
187

10.1016/j.rser.2023.113755
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85171651317&doi=10.1016%2fj.rser.2023.113755&partnerID=40&md5=ce97004ac7c1be7b5c9a15fe3df9e9eb
Biological hydrogen production by dark fermentation is an environmentally benign alternative to the conventional fossil-based hydrogen production process. However, low biological hydrogen yields remain a major constraint to commercial production. Unraveling the metabolic pathway for hydrogen production will unlock the potential to enhance biohydrogen yield. In this regard, the key fundamentals of various important dark fermentative hydrogen-producing metabolic pathways are scrutinized in this review, including those in strict and facultative anaerobic bacteria such as Clostridia, Enterobacter, Thermotoga, and Thermoanaerobacterium. Since the hydrogen metabolic pathway is governed by a series of redox reactions during fermentation, manipulation of the redox potential not only indicates the extent of an anaerobic condition, but also affects the growth of anaerobic bacteria. This article reviews the types of hydrogen-producing bacteria and their fundamental metabolic pathways, the effect of redox potential on metabolic fluxes towards growth and hydrogen production and discusses various important redox potential control strategies. In pure culture, strict anaerobes are more suitable to grow in a more reducing environment (lower redox potential), while facultative anaerobes thrive in the presence of oxygen where the redox potential is relatively higher. Redox potential control could minimize the carbon flow towards the propionate-producing pathway by avoiding the redox potential value of around −280 mV. Avoiding the propionate- and lactate-producing pathways results in a higher chance of producing hydrogen via the pyruvate decarboxylation process. Overall, the review provides an all-rounded investigation on the manipulation and impact of redox potential to achieve better hydrogen production for sustainable energy resources. © 2023 Elsevier Ltd
Elsevier Ltd
13640321
English
Review

author Sim X.Y.; Tan J.P.; He N.; Yeap S.K.; Hui Y.W.; Luthfi A.A.I.; Manaf S.F.A.; Bukhari N.A.; Jamali N.S.
spellingShingle Sim X.Y.; Tan J.P.; He N.; Yeap S.K.; Hui Y.W.; Luthfi A.A.I.; Manaf S.F.A.; Bukhari N.A.; Jamali N.S.
Unraveling the effect of redox potential on dark fermentative hydrogen production
author_facet Sim X.Y.; Tan J.P.; He N.; Yeap S.K.; Hui Y.W.; Luthfi A.A.I.; Manaf S.F.A.; Bukhari N.A.; Jamali N.S.
author_sort Sim X.Y.; Tan J.P.; He N.; Yeap S.K.; Hui Y.W.; Luthfi A.A.I.; Manaf S.F.A.; Bukhari N.A.; Jamali N.S.
title Unraveling the effect of redox potential on dark fermentative hydrogen production
title_short Unraveling the effect of redox potential on dark fermentative hydrogen production
title_full Unraveling the effect of redox potential on dark fermentative hydrogen production
title_fullStr Unraveling the effect of redox potential on dark fermentative hydrogen production
title_full_unstemmed Unraveling the effect of redox potential on dark fermentative hydrogen production
title_sort Unraveling the effect of redox potential on dark fermentative hydrogen production
publishDate 2023
container_title Renewable and Sustainable Energy Reviews
container_volume 187
container_issue
doi_str_mv 10.1016/j.rser.2023.113755
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85171651317&doi=10.1016%2fj.rser.2023.113755&partnerID=40&md5=ce97004ac7c1be7b5c9a15fe3df9e9eb
description Biological hydrogen production by dark fermentation is an environmentally benign alternative to the conventional fossil-based hydrogen production process. However, low biological hydrogen yields remain a major constraint to commercial production. Unraveling the metabolic pathway for hydrogen production will unlock the potential to enhance biohydrogen yield. In this regard, the key fundamentals of various important dark fermentative hydrogen-producing metabolic pathways are scrutinized in this review, including those in strict and facultative anaerobic bacteria such as Clostridia, Enterobacter, Thermotoga, and Thermoanaerobacterium. Since the hydrogen metabolic pathway is governed by a series of redox reactions during fermentation, manipulation of the redox potential not only indicates the extent of an anaerobic condition, but also affects the growth of anaerobic bacteria. This article reviews the types of hydrogen-producing bacteria and their fundamental metabolic pathways, the effect of redox potential on metabolic fluxes towards growth and hydrogen production and discusses various important redox potential control strategies. In pure culture, strict anaerobes are more suitable to grow in a more reducing environment (lower redox potential), while facultative anaerobes thrive in the presence of oxygen where the redox potential is relatively higher. Redox potential control could minimize the carbon flow towards the propionate-producing pathway by avoiding the redox potential value of around −280 mV. Avoiding the propionate- and lactate-producing pathways results in a higher chance of producing hydrogen via the pyruvate decarboxylation process. Overall, the review provides an all-rounded investigation on the manipulation and impact of redox potential to achieve better hydrogen production for sustainable energy resources. © 2023 Elsevier Ltd
publisher Elsevier Ltd
issn 13640321
language English
format Review
accesstype
record_format scopus
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