Centre for Waste Management - International Research Centre, Sathyabama Institute of Science and Technology, Jeppiaar Nagar (OMR), Chennai 600119, Tamil Nadu, India.
Department of Chemical Engineering, National Institute of Technology Calicut, Kozhikode 673601, Kerala, India.
Sci Total Environ. 2023 Oct 20;896:165143. doi: 10.1016/j.scitotenv.2023.165143. Epub 2023 Jun 25.
Modernisation of industrial and transportation sector would have not imaginable without the help of fossil fuels, but constant usage has led to many environmental concerns. As a step forward, for safer next generation living we are forced to look into green fuels like bio‑hydrogen and higher alcohols. This review mainly focuses on bio‑hydrogen production via biological pathways, genetic improvements, knowledge gap, economics, and future directions. Dark and photo fermentation process with the factor influence the process (pH regulation, temperature, hydraulic retention time, organic loading rate, Maintenance, Nutrient) is studied. Integration of dark fermentation and microbial electrolysis cell is the most trending progression for sustainable bio‑hydrogen production. Genetic improvement of microbe for biohydrogen production via inactivation of hydrogenase (Hase) and improve oxygen tolerant Hase. In future, bioaugmentation, multidisciplinary integrated process and microbial electrolysis needs to be experimented in industrial level scale for successful commercialization. About 41.47 mmol H/g DCW h at 40 g/L of optimum biohydrogen production was obtained through glycerol fermentation. From the studies, the cost of biohydrogen production was found to high with respect to the direct bio photolysis it cost around $7.24 kg; for indirect bio photolysis it cost around $7.54 kg and for fermentation it cost around $7.61 kg.
如果没有化石燃料的帮助,工业和交通部门的现代化将是难以想象的,但化石燃料的持续使用已经导致了许多环境问题。作为迈向更安全的下一代生活的一步,我们被迫寻找绿色燃料,如生物氢和高醇。本综述主要集中在生物氢的生物途径生产、遗传改良、知识差距、经济和未来方向。研究了黑暗发酵和光发酵过程以及影响该过程的因素(pH 调节、温度、水力停留时间、有机负荷率、维护、营养)。黑暗发酵和微生物电解池的集成是可持续生物氢生产的最热门进展。通过抑制氢化酶(Hase)和提高耐氧氢化酶来改善微生物生产生物氢的遗传改良。未来,需要在工业规模上进行生物增强、多学科综合工艺和微生物电解实验,以实现成功的商业化。通过甘油发酵,获得了 41.47mmol H/g DCW h 的最佳生物氢产量,为 40g/L。从研究中可以发现,生物氢的生产成本相对于直接生物光解(约 7.24 美元/公斤)和间接生物光解(约 7.54 美元/公斤)较高,而发酵法的生产成本约为 7.61 美元/公斤。