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周期性中断键合行为以重构石墨炔的离域电子态用于改善电催化析氢

Periodically Interrupting Bonding Behavior to Reformat Delocalized Electronic States of Graphdiyne for Improved Electrocatalytic Hydrogen Evolution.

作者信息

Ma Kaikai, Wu Jing, Wang Xin, Sun Yu, Xiong Zhaozhao, Dai Fulong, Bai Haokun, Xie Yong, Kang Zhuo, Zhang Yue

机构信息

Academy for Advanced Interdisciplinary Science and Technology, Beijing Advanced Innovation Center for Materials Genome Engineering, University of Science and Technology Beijing, Beijing, 100083, P. R. China.

Beijing Key Laboratory for Advanced Energy Materials and Technologies, School of Materials Science and Engineering, University of Science and Technology Beijing, Beijing, 100083, P. R. China.

出版信息

Angew Chem Int Ed Engl. 2022 Oct 17;61(42):e202211094. doi: 10.1002/anie.202211094. Epub 2022 Sep 16.

Abstract

π electron configuration plays a pivotal role in metal-free carbon catalysts, and its delocalization degree overwhelmingly dominates catalytic activity. However, precise and targeted regulation of inherent π electrons still remain challenging. Here, one chemical-bond-targeted physical clipping strategy is proposed and effectively adopted in the cutting-edge carbon material system of graphdiyne (GDY) as a concept-of-proof. The delocalized electrons are expected to be periodically reformatted for substantially enhancing π electron delocalization. Via theoretical screening and well-designed experiments, periodical interruption of Csp-Csp bonds in GDY can render sp-C sites with decent activity, ultimately yielding top-ranking electrocatalytic performance without intentionally introducing external decoration. The as-proposed concept endows a universal prescription to push the limit of delocalization degree, thus shedding novel light on the rational design of decent metal-free catalysts.

摘要

π电子构型在无金属碳催化剂中起着关键作用,其离域程度在很大程度上决定了催化活性。然而,对固有π电子进行精确且有针对性的调控仍然具有挑战性。在此,提出了一种化学键靶向物理剪裁策略,并在前沿的石墨炔(GDY)碳材料体系中作为概念验证有效地采用。离域电子有望进行周期性重整,以大幅增强π电子离域。通过理论筛选和精心设计的实验,GDY中Csp-Csp键的周期性中断可产生具有良好活性的sp-C位点,最终在不故意引入外部修饰的情况下产生一流的电催化性能。所提出的概念赋予了一个通用的方法来突破离域程度的极限,从而为合理设计优良的无金属催化剂提供了新的思路。

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