Review of over two decades of research on dark and photo fermentation for biohydrogen production - A combination of traditional, systematic, and bibliometric approaches

被引:9
作者
Agyekum, Ephraim Bonah [1 ,2 ,3 ,5 ]
Odoi-Yorke, Flavio [4 ]
机构
[1] Ural Fed Univ, Dept Nucl & Renewable Energy, 19 Mira St, Ekaterinburg 620002, Russia
[2] Western Caspian Univ, 31 Istiglaliyyat St, AZ-1001 Baku, Azerbaijan
[3] Appl Sci Private Univ, Appl Sci Res Ctr, Amman, Jordan
[4] Cape Coast Tech Univ, Sch Engn, Dept Renewable Energy Technol, Cape Coast, Ghana
[5] Jadara Univ, Jadara Univ Res Ctr, Irbid, Jordan
关键词
Hydrogen; Dark photo fermentation; Biohydrogen; Renewable energy; Anaerobic digestion; BIO-HYDROGEN PRODUCTION; PURPLE NONSULFUR BACTERIA; ANAEROBIC CO-DIGESTION; WASTE-WATER; FOOD WASTE; CLOSTRIDIUM-BUTYRICUM; H-2; PRODUCTION; ORGANIC WASTE; CHEESE WHEY; SLUDGE;
D O I
10.1016/j.ijhydene.2024.10.218
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Biohydrogen represents a highly feasible and environmentally sustainable fuel alternative for the world's growing energy needs. However, technological advancements are still required for large-scale hydrogen utilization, particularly in determining the most advantageous technological path for recovering affordable and renewable hydrogen. Researchers have conducted numerous studies to determine the optimal technology for producing large-scale biohydrogen. However, no comprehensive systematic and bibliometric review presents an overview of the various production modes, i.e., the photo and dark fermentation techniques. This paper reviews recent research on biohydrogen production using dark and photofermentation modes, spanning over two decades, using Scopus data. The review highlights the growing push to integrate hydrogen production into larger bioenergy systems, focusing on improving the core processes and removing obstacles. Techniques like codigestion and two-stage anaerobic digestion can increase production yields. The review also highlights the possibility of combining waste treatment with energy production to address environmental issues. Incorporating dark- and photo-fermentation processes in commercial hydrogen production shows greater potential for commercial use, potentially increasing yield. The study concluded by identifying challenges for the various modes of production and ways to overcome them. It also provided pertinent information on potential future research directions.
引用
收藏
页码:1149 / 1169
页数:21
相关论文
共 130 条
[81]   Outlook of fermentative hydrogen production techniques: An overview of dark, photo and integrated dark-photo fermentative approach to biomass [J].
Mishra, Puranjan ;
Krishnan, Santhana ;
Rana, Supriyanka ;
Singh, Lakhveer ;
Sakinah, Mimi ;
Ab Wahid, Zularisam .
ENERGY STRATEGY REVIEWS, 2019, 24 :27-37
[82]   Enhancement of hydrogen production from glucose by nitrogen gas sparging [J].
Mizuno, O ;
Dinsdale, R ;
Hawkes, FR ;
Hawkes, DL ;
Noike, T .
BIORESOURCE TECHNOLOGY, 2000, 73 (01) :59-65
[83]   Anaerobic biohydrogen production from dairy wastewater treatment in sequencing batch reactor (AnSBR): Effect of organic loading rate [J].
Mohan, S. Venkata ;
Babu, V. Lalit ;
Sarma, P. N. .
ENZYME AND MICROBIAL TECHNOLOGY, 2007, 41 (04) :506-515
[84]   Single-stage repeated batch cycles using co-culture of Enterobacter cloacae and purple non-sulfur bacteria for hydrogen production [J].
Moreira, F. S. ;
Rodrigues, M. S. ;
Sousa, L. M. ;
Batista, F. R. X. ;
Ferreira, J. S. ;
Cardoso, V. L. .
ENERGY, 2022, 239
[85]   Enhancement of Clostridium butyricum hydrogen production by iron and nickel nanoparticles: Effects on hydA expression [J].
Moura, A. G. L. ;
Rabelo, C. A. B. S. ;
Okino, C. H. ;
Maintinguer, S., I ;
Silva, E. L. ;
Varesche, M. B. A. .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2020, 45 (53) :28447-28461
[86]   Anaerobic acclimation in Chlamydomonas reinhardtii -: Anoxic gene expression, hydrogenase induction, and metabolic pathways [J].
Mus, Florence ;
Dubini, Alexandra ;
Seibert, Michael ;
Posewitz, Matthew C. ;
Grossman, Arthur R. .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2007, 282 (35) :25475-25486
[87]   Catalytic biohydrogen production from organic waste materials: A literature review and bibliometric analysis [J].
Nabgan, Walid ;
Abdullah, Tuan Amran Tuan ;
Nabgan, Bahador ;
Jalil, Aishah Abdul ;
Nordin, Abu Hassan ;
Ul-Hamid, Anwar ;
Hassan, Nurul Sahida ;
Hussain, Ijaz ;
Coelho, Alberto ;
Amin, Ashraf ;
Ikram, Muhammad .
INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2021, 46 (60) :30903-30925
[88]   Advances in the catalyzed photo-fermentative biohydrogen production through photo nanocatalysts with the potential of selectivity, and customization [J].
Nadeem, Faiqa ;
Zhang, Huan ;
Tahir, Nadeem ;
Zhang, Zhiping ;
Singhania, Reeta Rani ;
Shahzaib, Muhammad ;
Ramzan, Hina ;
Usman, Muhammad ;
Rahman, Muneeb Ur ;
Zhang, Quanguo .
BIORESOURCE TECHNOLOGY, 2023, 382
[89]   Defect engineering in SnO2 nanomaterials: Pathway to enhance the biohydrogen production from agricultural residue of corn stover [J].
Nadeem, Faiqa ;
Jiang, Danping ;
Tahir, Nadeem ;
Alam, Mujeeb ;
Zhang, Zhiping ;
Wang Yi ;
Lu Chaoyang ;
Zhang, Quanguo .
APPLIED MATERIALS TODAY, 2020, 21
[90]   Recent insights into biohydrogen production by microalgae - From biophotolysis to dark fermentation [J].
Nagarajan, Dillirani ;
Lee, Duu-Jong ;
Kondo, Akihiko ;
Chang, Jo-Shu .
BIORESOURCE TECHNOLOGY, 2017, 227 :373-387