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具有增强单线态氧生成能力的含氧钨单原子催化剂的原子尺度剪裁与分子水平追踪

Atomic-Scale Tailoring and Molecular-Level Tracking of Oxygen-Containing Tungsten Single-Atom Catalysts with Enhanced Singlet Oxygen Generation.

作者信息

Gu Yan, Xu Tiefeng, Zhu Zhexin, Chen Xiufang, Chen Wenxing, Lu Wangyang

机构信息

National Engineering Lab for Textile Fiber Materials & Processing Technology (Zhejiang), School of Materials Science and Engineering, Zhejiang Sci-Tech University, Hangzhou 310018, China.

出版信息

ACS Appl Mater Interfaces. 2021 Aug 11;13(31):37142-37151. doi: 10.1021/acsami.1c09016. Epub 2021 Aug 2.

Abstract

The local coordination structure of metal atoms in single-atom catalysts (SACs) greatly influences their catalytic performance. And for most SACs, single metal atoms were anchored on carbon materials with N or C coordination. However, the rational design of oxygen-containing SACs and analyzing its structure-performance relationship remain challenging. Herein, we used amino-rich compounds to tailor the metatungstate and fix the W atoms and finally obtained the oxygen-containing W-SACs. The structural evolution of tungsten and its coordination atoms were tracked by electrospray ionization high-definition mass spectrometry. Furthermore, aberration-corrected transmission electron microscopy, X-ray absorption fine-structure spectroscopy, and first-principles calculation results revealed that different from the traditional SACs, the WON moiety (W coordinated with two O atoms and two N atoms) may be the favored structure for W species. This special structure promoted the energy transfer for enhancing singlet oxygen generation. This work presents an efficient way to prepare more high-efficiency SACs by atomic-scale tailoring and structural evolution tracking at the molecular level.

摘要

单原子催化剂(SACs)中金属原子的局部配位结构对其催化性能有很大影响。对于大多数SACs来说,单金属原子通过N或C配位锚定在碳材料上。然而,含氧化合物单原子催化剂的合理设计及其结构-性能关系的分析仍然具有挑战性。在此,我们使用富含氨基的化合物来定制偏钨酸盐并固定W原子,最终获得了含氧化合物的W-SACs。通过电喷雾电离高清质谱跟踪钨及其配位原子的结构演变。此外,像差校正透射电子显微镜、X射线吸收精细结构光谱和第一性原理计算结果表明,与传统的SACs不同,WON部分(W与两个O原子和两个N原子配位)可能是W物种的有利结构。这种特殊结构促进了能量转移以增强单线态氧的产生。这项工作提出了一种通过分子水平的原子尺度定制和结构演变跟踪来制备更多高效SACs的有效方法。

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