Microbial pathways for biohydrogen production: Advances, challenges, and future prospects

Soghra Nashath Omer , Panchamoorthy Saravanan , R. Rajeshkannan , Pramilaa Kumar , Madhavi Reddy , M. Rajasimman , S. Venkat kumar
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Abstract

Rising oil costs, growing environmental concerns, and the pressing need for sustainable fossil fuel substitutes have all caused the globe to move firmly toward hydrogen as a possible future energy carrier. Microbial fermentation is a revolutionary method for producing hydrogen that not only uses readily accessible waste materials and neglected bioresources, such as forestry and agricultural wastes, but also blends in well with waste management and a circular bioeconomy. In this review, the metabolic characteristics of microorganisms that produce hydrogen are examined, along with the variables that affect production rates and yields, such as substrate specialization, enzymatic efficiency, and ambient circumstances. Important routes including photo fermentation, dark fermentation, and bio photolysis are discussed, along with their benefits, drawbacks, and potential for integration to increase overall efficiency. Critical bioprocess parameters, novel reactor topologies, and biomass pre-treatment methods are examined, with a focus on how they might improve hydrogen production and lessen process bottlenecks. Additionally, the potential of cutting-edge technologies like synthetic biology-driven microbial engineering and microbial electrolysis cells to transform hydrogen generation is assessed.Despite tremendous progress, problems including poor yields, scalability problems, high capital costs, and substrate competition still exist, calling for a multidisciplinary strategy that blends engineering tactics with biological breakthroughs.The necessity of coordinated efforts to improve microbial hydrogen production systems is ultimately highlighted by this analysis. This will help renewable hydrogen become a practical, scalable, and sustainable energy substitute for fossil fuels, promoting a cleaner and more resilient energy future.
生物制氢的微生物途径:进展、挑战和未来展望
不断上涨的石油成本,日益增长的环境问题,以及对可持续化石燃料替代品的迫切需求,都促使全球坚定地将氢作为未来可能的能源载体。微生物发酵是一种革命性的制氢方法,它不仅利用了容易获得的废物和被忽视的生物资源,如林业和农业废物,而且还与废物管理和循环生物经济很好地融合在一起。在这篇综述中,研究了产生氢的微生物的代谢特征,以及影响生产速率和产量的变量,如底物专门化、酶效率和环境环境。讨论了包括光发酵、暗发酵和生物光解在内的重要途径,以及它们的优点、缺点和整合以提高整体效率的潜力。研究了关键的生物工艺参数、新型反应器拓扑结构和生物质预处理方法,重点研究了它们如何提高氢气产量和减少工艺瓶颈。此外,还评估了合成生物学驱动的微生物工程和微生物电解细胞等尖端技术转化制氢的潜力。尽管取得了巨大的进步,但包括产量低、可扩展性问题、高资本成本和基质竞争等问题仍然存在,这需要将工程战术与生物学突破相结合的多学科战略。这一分析最终强调了协调努力改善微生物制氢系统的必要性。这将有助于可再生氢成为化石燃料的实用、可扩展和可持续的能源替代品,促进更清洁、更有弹性的能源未来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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