Key Laboratory of Organic Solids, Institute of Chemistry, Chinese Academy of Sciences, Beijing, 100190, P. R. China.
University of Chinese Academy of Sciences, Beijing, 100049, P. R. China.
Chemistry. 2020 Nov 26;26(66):15065-15073. doi: 10.1002/chem.202002041. Epub 2020 Sep 21.
Bioelectrochemical systems (BESs) provide favorable opportunities for the sustainable conversion of energy from biological metabolism. Biological photovoltaics (BPVs) and microbial fuel cells (MFCs) respectively realize the conversion of renewable solar energy and bioenergy into electrical energy by utilizing electroactive biological extracellular electron transfer, however, along with this energy conversion progress, relatively poor durability and low output performance are challenges as well as opportunities. Advances in improving bio-electrode interface compatibility will help to solve the problem of insufficient performance and further have a far-reaching impact on the development of bioelectronics. Conjugated polymers (CPs) with specific optical and electrical properties (absorption and emission spectra, energy band structure and electrical conductivity) afforded by π-conjugated backbones are conducive to enhancing the electron generation and output capacity of electroactive organisms. Furthermore, the water solubility, functionality, biocompatibility and mechanical properties optimized through appropriate modification of side chain provide a more adaptive contact interface between biomaterials and electrodes. In this minireview, we summarize the prominent contributions of CPs in the aspect of augmenting the photovoltaic response of BPVs and power supply of MFCs, and specifically discussed the role of CPs with expectation to provide inspirations for the design of bioelectronic devices in the future.
生物电化学系统(BESs)为生物代谢中能量的可持续转化提供了有利的机会。生物光伏(BPVs)和微生物燃料电池(MFCs)分别通过利用电活性生物细胞外电子转移将可再生太阳能和生物能转化为电能,然而,随着这种能量转换的进行,相对较差的耐久性和较低的输出性能既是挑战也是机遇。在提高生物电极界面兼容性方面的进展将有助于解决性能不足的问题,并进一步对生物电子学的发展产生深远的影响。具有特定光电特性(吸收和发射光谱、能带结构和电导率)的共轭聚合物(CPs)由π 共轭骨架提供,有利于增强电活性生物的电子生成和输出能力。此外,通过对侧链进行适当的修饰优化了水溶性、功能性、生物相容性和机械性能,为生物材料和电极之间提供了更适应的接触界面。在这篇综述中,我们总结了 CPs 在增强 BPVs 的光伏响应和 MFC 供电方面的突出贡献,并特别讨论了 CPs 的作用,以期为未来生物电子器件的设计提供启示。