Xu Hui, Li Junru, Chu Xianxu
Key Laboratory of Advanced Catalytic Materials and Technology, Advanced Catalysis and Green Manufacturing Collaborative Innovation Center, Changzhou University, Changzhou, Jiangsu Province 213164, China.
Henan Key Laboratory of Biomolecular Recognition and Sensing, College of Chemistry and Chemical Engineering, Shangqiu Normal University, Shangqiu 476000, Henan Province, P. R. China.
Nanoscale Horiz. 2023 Mar 27;8(4):441-452. doi: 10.1039/d2nh00549b.
The formation of a built-in electric field (BIEF) can induce electron-rich and electron-poor counterparts to synergistically modify electronic configurations and optimize the binding strengths with intermediates, thereby leading to outstanding electrocatalytic performance. Herein, a critical review regarding the concept, modulation strategies, and applications of BIEFs is comprehensively summarized, which begins with the fundamental concepts, together with the advantages of BIEF for boosting electrocatalytic reactions. Then, a systematic summary of the advanced strategies for the modulation of BIEF along with the in-detail mechanisms in its formation are also added. Finally, the applications of BIEF in driving electrocatalytic reactions and some cascade systems for illustrating the conclusive role from the induced BIEF are also systematically discussed, followed by perspectives on the future deployment and opportunity of the BIEF design.
内置电场(BIEF)的形成可诱导富电子和缺电子的对应物协同改变电子构型,并优化与中间体的结合强度,从而产生出色的电催化性能。在此,全面总结了关于内置电场的概念、调制策略及其应用的批判性综述,该综述从基本概念开始,同时阐述了内置电场在促进电催化反应方面的优势。然后,还系统总结了调制内置电场的先进策略及其形成的详细机制。最后,系统讨论了内置电场在驱动电催化反应中的应用以及一些级联系统,以说明诱导产生的内置电场的决定性作用,随后展望了内置电场设计的未来发展和机遇。