Rathi B Senthil, Kumar P Senthil, Rangasamy Gayathri
Department of Bioengineering, Saveetha School of Engineering, Saveetha Institute of Medical and Technical Sciences, Chennai, 602105, India.
Department of Chemical Engineering, Sri Sivasubramaniya Nadar College of Engineering, Kalavakkam, Tamil Nadu, 603110, India.
Mol Biotechnol. 2023 Aug 11. doi: 10.1007/s12033-023-00840-w.
Biohydrogen is an economical fuel which has enormous promise as an alternative energy source. The synthesis of biohydrogen can be done more affordably and sustainably using microalgae. For the generation of biohydrogen and the treatment of wastewater, microalgae derived from effluent have been showing very impressive outcomes. In comparison to traditional fuel sources, microalgae have benefits. Microalgae are capable of fixing ambient Carbon dioxide and converting it to carbohydrates, which are subsequently processed biochemically to provide fuel. When compared to terrestrial crops, they require less water and minerals for production. But besides these benefits, there are certain technological restrictions on the scale-up implementations of microalgae bioenergy. In this work, we explored the production of biohydrogen from several types of microalgae. The process of producing biohydrogen is affected by a number of variables, including pH, substrate concentration, the kinds of microalgal species, and others. The most recent studies and difficulties related to each stage of the biohydrogen manufacturing process are outlined. The synthesis of microalgal biohydrogen is improved using promising approaches that are discussed. Also, the specific future direction are covered. The possibility for microalgae-based production of biohydrogen to serve as an environmentally friendly and carbon-free biofuel solution that might handle the impending fuel scarcity was demonstrated. However, additional study is required on both the upstream and downstream processes of the synthesis of biohydrogen.
生物氢是一种经济的燃料,作为替代能源具有巨大的潜力。利用微藻可以更经济、可持续地合成生物氢。对于生物氢的产生和废水处理,源自废水的微藻已显示出非常可观的成果。与传统燃料源相比,微藻具有优势。微藻能够固定周围的二氧化碳并将其转化为碳水化合物,随后通过生物化学方法将其加工以提供燃料。与陆生作物相比,它们生产所需的水和矿物质更少。但除了这些优势外,微藻生物能源的扩大规模实施存在一定的技术限制。在这项工作中,我们探索了几种微藻产生生物氢的情况。生物氢的生产过程受到许多变量的影响,包括pH值、底物浓度、微藻种类等。概述了与生物氢制造过程每个阶段相关的最新研究和困难。讨论了使用有前景的方法来改进微藻生物氢的合成。此外,还涵盖了具体的未来方向。证明了基于微藻生产生物氢作为一种环境友好且无碳的生物燃料解决方案来应对即将到来的燃料短缺的可能性。然而,生物氢合成的上游和下游过程都需要进一步研究。