Zhao Fei, Yang Ke, Liu Yuxin, Li Juan, Li Chan, Xu Xinwu, He Yibo
State Key Laboratory of Solidification Processing, Center of Advanced Lubrication and Seal Materials, School of Materials Science and Engineering, Northwestern Polytechnical University, Xi'an, Shaanxi, 710072, P. R. China.
Adv Sci (Weinh). 2024 Sep;11(35):e2402978. doi: 10.1002/advs.202402978. Epub 2024 Jul 19.
Integration of solar cell and secondary battery cannot only promote solar energy application but also improve the electrochemical performance of battery. Lithium-sulfur battery (LSB) is an ideal candidate for photoassisted batteries owing to its high theoretical capacity. Unfortunately, the researches related the combination of solar energy and LSB are relatively lacking. Herein, a freestanding photoelectrode is developed for photoassisted lithium-sulfur battery (PALSB) by constructing a heterogeneous structured Au@N-TiO on carbon cloths (Au@N-TiO/CC), which combines multiple advantages. The Au@N-TiO/CC photoelectrode can produce the photoelectrons to facilitate sulfur reduction during discharge process, while generating holes to accelerate sulfur evolution during charge process, improving the kinetics of electrochemical reactions. Meanwhile, Au@N-TiO/CC can work as an electrocatalyst to promote the conversion of intermediate polysulfides during charge/discharge process, mitigating induced side reactions. Benefiting from the synergistic effect of electrocatalysis and photocatalysis, PALSB assembled with an Au@N-TiO/CC photoelectrode obtains ultrahigh specific capacity, excellent rate performance, and outstanding cycling performance. What is more, the Au@N-TiO/CC assembled PALSB can be directly charged under light illumination. This work not only expands the application of solar energy but also provides a new insight to develop advanced LSBs.
太阳能电池与二次电池的集成不仅可以促进太阳能的应用,还能提高电池的电化学性能。锂硫电池(LSB)因其高理论容量,是光辅助电池的理想选择。不幸的是,关于太阳能与锂硫电池结合的研究相对较少。在此,通过在碳布上构建异质结构的Au@N-TiO(Au@N-TiO/CC),开发了一种用于光辅助锂硫电池(PALSB)的独立光电极,它兼具多种优势。Au@N-TiO/CC光电极在放电过程中能产生光电子以促进硫还原,同时在充电过程中产生空穴以加速析硫,改善电化学反应动力学。此外,Au@N-TiO/CC在充放电过程中可作为电催化剂促进中间多硫化物的转化,减轻诱导副反应。受益于电催化和光催化的协同效应,采用Au@N-TiO/CC光电极组装的PALSB具有超高比容量、优异倍率性能和出色循环性能。更重要的是,采用Au@N-TiO/CC组装的PALSB在光照下可直接充电。这项工作不仅拓展了太阳能的应用,还为开发先进的锂硫电池提供了新的思路。