Nagarajan Dillirani, Lee Duu-Jong, Kondo Akihiko, Chang Jo-Shu
Department of Chemical Engineering, National Cheng Kung University, Tainan, Taiwan; Department of Chemical Engineering, National Taiwan University, Taipei, Taiwan.
Department of Chemical Engineering, National Taiwan University, Taipei, Taiwan.
Bioresour Technol. 2017 Mar;227:373-387. doi: 10.1016/j.biortech.2016.12.104. Epub 2016 Dec 30.
One of the best options to alleviate the problems associated with global warming and climate change is to reduce burning of fossil fuels and search for new alternative energy resources. In case of biodiesel and bioethanol production, the choice of feedstock and the process design influences the GHG emissions and appropriate methods need to be adapted. Hydrogen is a zero-carbon and energy dense alternative energy carrier with clean burning properties and biohydrogen production by microalgae can reduce production associated GHG emissions to a great extent. Biohydrogen can be produced through dark fermentation using sugars, starch, or cellulosic materials. Microalgae-based biohydrogen production is recently regarded as a promising pathway for biohydrogen production via photolysis or being a substrate for anaerobic fermentation. This review lists the methods of hydrogen production by microalgae. The enzymes involved and the factors affecting the biohydrogen production process are discussed. The bottlenecks in microalgae-based biohydrogen production are critically reviewed and future research areas in hydrogen production are presented.
缓解与全球变暖和气候变化相关问题的最佳选择之一是减少化石燃料的燃烧,并寻找新的替代能源。在生物柴油和生物乙醇生产中,原料的选择和工艺设计会影响温室气体排放,因此需要采用适当的方法。氢气是一种零碳且能量密度高的替代能源载体,具有清洁燃烧的特性,通过微藻生产生物氢可以在很大程度上减少生产过程中的温室气体排放。生物氢可以通过利用糖、淀粉或纤维素材料进行暗发酵来生产。基于微藻的生物氢生产最近被认为是通过光解生产生物氢或作为厌氧发酵底物的一条有前途的途径。本文综述了微藻产氢的方法。讨论了涉及的酶以及影响生物氢生产过程的因素。对基于微藻的生物氢生产中的瓶颈进行了批判性综述,并提出了未来氢气生产的研究领域。