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基于铈-氧亲和力的钙钛矿量子点上高效的C(sp)-H键氧化反应

Efficient C(sp)-H Bond Oxidation on Perovskite Quantum Dots Based on Ce-Oxygen Affinity.

作者信息

Wang Teng, Li Yonglong, Yang Xian, Hu Yanfang, Du Xiaomeng, Zhang Maodi, Huang Zhuanzhuan, Liu Siyu, Wang Ying, Xie Wei

机构信息

State Key Laboratory of Advanced Chemical Power Sources, Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), Tianjin Key Laboratory of Biosensing and Molecular Recognition, Haihe Laboratory of Sustainable Chemical Transformations, College of Chemistry, Nankai University, Weijin Rd. 94, Tianjin, 300071, China.

Ultrafast Electron Microscopy Laboratory, Key Laboratory of Weak-Light Nonlinear Photonics (Ministry of Education), School of Physics, Nankai University, Weijin Rd. 94, Tianjin, 300071, China.

出版信息

Angew Chem Int Ed Engl. 2024 Aug 26;63(35):e202409656. doi: 10.1002/anie.202409656. Epub 2024 Jul 22.

Abstract

Perovskite quantum dots (QDs) have shown attractive prospects in the field of visible photocatalysis, especially in the synthesis of high value-added chemicals. However, under aerobic conditions, the stable operation of QD catalysts has been limited by the reactive oxygen species (ROS) generated by photoexcitation, especially superoxide species O⋅. Here, we propose a strategy of Ce doping in perovskite QDs to guide superoxide species for photocatalytic oxidation reactions. In C(sp)-H bond oxidation of hydrocarbons, superoxide species were rapidly generated and efficiently utilized on the surface of perovskite QDs, which achieves the stable operation of the catalytic system and obtains a high product conversion rate (15.3 mmol/g/h for benzaldehydes). The mechanism studies show that the strong Ce-oxygen affinity accelerates the relaxation process of photoinduced exciton transfer to superoxide species and inhibits the radiative recombination pathway. This work provides a new idea of utilizing oxygen species on perovskite surface and broadens the design strategy of high-performance QD photocatalysts.

摘要

钙钛矿量子点(QDs)在可见光光催化领域展现出了诱人的前景,尤其是在高附加值化学品的合成方面。然而,在有氧条件下,量子点催化剂的稳定运行受到光激发产生的活性氧物种(ROS)的限制,特别是超氧物种O⋅。在此,我们提出了一种在钙钛矿量子点中掺杂Ce的策略,以引导超氧物种进行光催化氧化反应。在烃类的C(sp)-H键氧化反应中,超氧物种在钙钛矿量子点表面快速生成并得到有效利用,实现了催化体系的稳定运行,并获得了较高的产物转化率(苯甲醛为15.3 mmol/g/h)。机理研究表明,Ce与氧的强亲和力加速了光致激子向超氧物种转移的弛豫过程,并抑制了辐射复合途径。这项工作为利用钙钛矿表面的氧物种提供了新思路,并拓宽了高性能量子点光催化剂的设计策略。

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