应用化学 ›› 2022, Vol. 39 ›› Issue (11): 1652-1664.DOI: 10.19894/j.issn.1000-0518.220119

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原子级精确的币金属纳米团簇在光催化应用方面的研究进展

逯慧1,3, 李江1,2, 王丽华1,2, 诸颖1,2, 陈静1,2()   

  1. 1.中国科学院上海应用物理研究所,上海 201800
    2.中国科学院上海高等研究院基础交叉研究中心,张江实验室,上海 201210
    3.中国科学院大学,北京 100049
  • 收稿日期:2022-04-10 接受日期:2022-07-05 出版日期:2022-11-01 发布日期:2022-11-09
  • 通讯作者: 陈静
  • 基金资助:
    国家自然科学基金面上项目(62065012);中国科学院青年创新促进会人才专项(2016236)

Researsh Progress of Photocatalytic Applications of Atomically Precise Coinage Metal Nanoclusters

Hui LU1,3, Jiang LI1,2, Li-Hua WANG1,2, Ying ZHU1,2, Jing CHEN1,2()   

  1. 1.Division of Physical Biology,CAS Key Laboratory of Interfacial Physics and Technology,Shanghai Institute of Applied Physics,Chinese Academy of Sciences,Shanghai 201800,China
    2.Zhangjiang Laboratory,Shanghai Advanced Research Institute,Chinese Academy of Sciences,the Interdisciplinary Research Center,Shanghai Synchrotron Radiation Facility,Shanghai 201210,China
    3.University of Chinese Academy of Sciences,Beijing 100049,China
  • Received:2022-04-10 Accepted:2022-07-05 Published:2022-11-01 Online:2022-11-09
  • Contact: Jing CHEN
  • About author:chenjing@sari.ac.cn
  • Supported by:
    the National Natural Science Foundation of China(62065012);the Youth Innovation Promotion Association of CAS(2016236)

摘要:

光催化技术可以直接将太阳能转化为化学能,制造化学燃料或环境友好的产品。然而,常用的光催化剂大多为具有宽能隙的半导体材料,所需光源大多在紫外区,对太阳光的利用率不高;并且电子-空穴复合率高,导致光催化反应效率低。币金属纳米团簇具有超小尺寸(<2 nm)和分立能级,能够实现电子和空穴的分离,电子结构可调,可以通过调节其电子结构进而提高其光催化性能。同时,精确的原子级组成和结构使其成为一种在原子水平上探索光催化机制的理想模型。本文报道了基于币金属纳米团簇的光催化反应的现状,包括水分解产氢、有机污染物降解和光催化氧化胺等。通过探讨调节币金属纳米团簇的光催化性能的策略,对币金属纳米团簇光催化剂的发展前景予以展望。

关键词: 纳米团簇, 光催化, 币金属

Abstract:

Photocatalysis has shown a great potential as a low-cost, environmentally friendly and sustainable treatment technology. However, limitations in incident light utilization and charge separation are major drawbacks that restrict the activity of current semiconductors. Coinage metal nanoclusters have been increasingly explored recently as photocatalytic material due to ultra-small size (<2 nm), separated energy level and tunable electronic structures. Meanwhile, it is an ideal model for exploring the photocatalytic mechanism at the atomic level because of its atomically precise structure. This review provides an overview of photocatalytic reactions based on coinage metal nanoclusters, including water splitting for hydrogen production, organic pollutant degradation, and aerobic oxidation of amines to imines. By discussing strategies to tailor the photocatalytic properties of coinage metal nanoclusters, the development potential of coinage metal nanocluster photocatalysts are prospected.

Key words: Nanocluster, Photocatalysis, Coinage metal

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