材料科学
储能
氧化还原
伪随机二进制序列
太阳能
光电化学电池
电池(电)
太阳能电池
纳米技术
电极
电气工程
光电子学
工程类
二进制数
化学
功率(物理)
物理
算术
数学
物理化学
量子力学
电解质
冶金
作者
Hao Feng,Dong Liu,Ying Zhang,Xinyi Shi,Oladapo Christopher Esan,Qiang Li,Rong Chen,Liang An
标识
DOI:10.1002/aenm.202200469
摘要
Abstract The photoelectrochemical redox battery (PRB) has been regarded as an alternative candidate for large‐scale solar energy capture, conversion, and storage as it combines the superior advantages of photoelectrochemical devices and redox batteries. As an emerging solar energy utilization technology, significant progress has been made towards promoting and proliferating the practical applications of PRBs. However, wide market penetration of PRBs is still being significantly inhibited by limited photocatalytic activity, low efficiency, among other critical issues. Furthermore, the integration of each component, including solar materials, redox couples, and membranes and their interaction in PRBs play vital roles towards achieving smooth operation and high performance. Herein, the materials, mechanisms, recent advances, and challenges in the use of PRBs are presented. The crucial influence of redox couples, photoelectrode materials, membranes on the performance of the system including how they affect solar energy capture, reaction kinetics, and internal losses are systematically discussed. In addition, the recent advances of a single‐battery of photoelectrode mode and an integrated device of solar cell mode are summarized. Furthermore, the state of the art performance of PRBs and their upscaling progress are also discussed. Finally, the challenges and perspectives for the future development of PRBs are highlighted.
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