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通过超分子光催化剂中的分子对称性调制增强内建电场以实现高效光催化析氢

Enhancing Built-in Electric Fields via Molecular Symmetry Modulation in Supramolecular Photocatalysts for Highly Efficient Photocatalytic Hydrogen Evolution.

作者信息

Zhu Xiaolin, Jia Yihui, Liu Yuhan, Xu Jingyi, He Huarui, Wang Siyue, Shao Yang, Zhai Yaxin, Zhu Yongfa

机构信息

Key Laboratory of Applied Surface and Colloid Chemistry (Ministry of Education), Xi'an Key Laboratory of Polymeric Soft Matter, School of Chemistry and Chemical Engineering, Shaanxi Normal University, Xi'an, 710119, P. R. China.

Department of Chemistry, Tsinghua University, Beijing, 100084, P. R. China.

出版信息

Angew Chem Int Ed Engl. 2024 Jun 21;63(26):e202405962. doi: 10.1002/anie.202405962. Epub 2024 May 24.

Abstract

Nature-inspired supramolecular self-assemblies are attractive photocatalysts, but their quantum yields are limited by poor charge separation and transportation. A promising strategy for efficient charge transfer is to enhance the built-in electric field by symmetry breaking. Herein, an unsymmetric protonation, N-heterocyclic π-conjugated anthrazoline-based supramolecular photocatalyst SA-DADK-H was developed. The unsymmetric protonation breaks the initial structural symmetry of DADK, resulting in ca. 50-fold increase in the molecular dipole, and facilitates efficient charge separation and transfer within SA-DADK-H. The protonation process also creates numerous active sites for HO adsorption, and serves as crucial proton relays, significantly improving the photocatalytic efficiency. Remarkably, SA-DADK-H exhibits an outstanding hydrogen evolution rate of 278.2 mmol g h and a remarkable apparent quantum efficiency of 25.1 % at 450 nm, placing it among the state-of-the-art performances in organic semiconductor photocatalysts. Furthermore, the versatility of the unsymmetric protonation approach has been successfully applied to four other photocatalysts, enhancing their photocatalytic performance by 39 to 533 times. These findings highlight the considerable potential of unsymmetric protonation induced symmetry breaking strategy in tailoring supramolecular photocatalysts for efficient solar-to-fuel production.

摘要

受自然启发的超分子自组装体是很有吸引力的光催化剂,但其量子产率受到电荷分离和传输不佳的限制。一种实现高效电荷转移的有前景的策略是通过打破对称性来增强内建电场。在此,开发了一种不对称质子化的、基于氮杂环π共轭蒽唑啉的超分子光催化剂SA-DADK-H。不对称质子化打破了DADK最初的结构对称性,导致分子偶极矩增加约50倍,并促进了SA-DADK-H内的高效电荷分离和转移。质子化过程还为羟基吸附创造了大量活性位点,并充当关键的质子中继体,显著提高了光催化效率。值得注意的是,SA-DADK-H在450 nm处表现出278.2 mmol g⁻¹ h⁻¹的出色析氢速率和25.1%的显著表观量子效率,使其跻身有机半导体光催化剂的前沿性能之列。此外,不对称质子化方法的通用性已成功应用于其他四种光催化剂,将它们的光催化性能提高了39至533倍。这些发现突出了不对称质子化诱导的对称性破缺策略在定制超分子光催化剂以实现高效太阳能到燃料转化方面的巨大潜力。

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