CAS Key Laboratory of Microbial Physiological and Metabolic Engineering, State Key Laboratory of Microbial Resources, Institute of Microbiology, Chinese Academy of Sciences, Beijing 100101, China; University of Chinese Academy of Sciences, Beijing 100049, China.
CAS Key Laboratory of Microbial Physiological and Metabolic Engineering, State Key Laboratory of Microbial Resources, Institute of Microbiology, Chinese Academy of Sciences, Beijing 100101, China; University of Chinese Academy of Sciences, Beijing 100049, China.
Biotechnol Adv. 2023 May-Jun;64:108101. doi: 10.1016/j.biotechadv.2023.108101. Epub 2023 Jan 18.
Biophotovoltaics (BPV) is a clean power generation technology that uses self-renewing photosynthetic microorganisms to capture solar energy and generate electrical current. Although the internal quantum efficiency of charge separation in photosynthetic microorganisms is very high, the inefficient electron transfer from photosystems to the extracellular electrodes hampered the electrical outputs of BPV systems. This review summarizes the approaches that have been taken to increase the electrical outputs of BPV systems in recent years. These mainly include redirecting intracellular electron transfer, broadening available photosynthetic microorganisms, reinforcing interfacial electron transfer and design high-performance devices with different configurations. Furthermore, three strategies developed to extract photosynthetic electrons were discussed. Among them, the strategy of using synthetic microbial consortia could circumvent the weak exoelectrogenic activity of photosynthetic microorganisms and the cytotoxicity of exogenous electron mediators, thus show great potential in enhancing the power output and prolonging the lifetime of BPV systems. Lastly, we prospected how to facilitate electron extraction and further improve the performance of BPV systems.
生物光伏(BPV)是一种清洁的发电技术,它利用可再生的光合微生物来捕获太阳能并产生电流。尽管光合微生物中电荷分离的内在量子效率非常高,但从光合系统到细胞外电极的电子转移效率低下,阻碍了 BPV 系统的电力输出。本综述总结了近年来为提高 BPV 系统电力输出而采取的方法。这些方法主要包括重新引导细胞内电子转移、拓宽可用的光合微生物、增强界面电子转移以及设计具有不同配置的高性能器件。此外,还讨论了三种用于提取光合电子的策略。其中,使用合成微生物群落的策略可以规避光合微生物的弱外生电子活性和外源电子介体的细胞毒性,因此在提高 BPV 系统的功率输出和延长其寿命方面具有很大的潜力。最后,我们展望了如何促进电子提取并进一步提高 BPV 系统的性能。