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电化学(中英文) ›› 2019, Vol. 25 ›› Issue (3): 349-362.  doi: 10.13208/j.electrochem.181058

• 综述 • 上一篇    下一篇

超四面体硫簇结构调控与电化学发光研究进展

雷  刚,刘  洋*   

  1. 清华大学化学系,北京 100084
  • 收稿日期:2019-03-07 修回日期:2019-03-26 出版日期:2019-06-25 发布日期:2019-03-28
  • 通讯作者: 刘洋https://www.tsinghua.edu.cn/publish/chem/2142/2011/20110331025645785404750/20110331025645785404750_.html E-mail:liu-yang@mail.tsinghua.edu.cn

Research Progresses in Structural Modulation and Electrochemiluminescence of Supertetrahedral Chalcogenide Clusters

LEI Gang, LIU Yang*   

  1. Department of Chemistry, Tsinghua University, Beijing 100084, China
  • Received:2019-03-07 Revised:2019-03-26 Published:2019-06-25 Online:2019-03-28
  • Supported by:
    This work was supported by the National Natural Science Foundation of China (No. 21874080,  21622506, 21621003) and National Key Research and Development Program of China (No. 2016YFA0203101).

摘要:

电化学发光(ECL)因其独特的性能特点在生物分析等领域展现出广阔的应用前景,高效ECL试剂的开发则为性能优异的传感器件的发展和临床应用提供了重要工具. 开放骨架超四面体硫簇由于同时具有分子筛的多孔结构和半导体的优异光电性能,在ECL分析中受到了越来越多的关注. 超四面体硫簇的结构组成可以实现原子级别的精确调控,并且其本身还可以作为结构单元来构筑多孔结构半导体材料. 这些特点使通过原子级别的结构组成调节来调控超四面体硫簇的性能成为可能,为发展性能优异的电化学发光材料,拓展其在生化传感、免疫分析和生物成像等方面的应用提供有效工具. 本综述总结了超四面体硫簇的合成、缺陷掺杂、功能调控及ECL生化分析等方面的研究进展,为推进高效ECL新材料的发展和新应用的拓展提供了借鉴.

关键词: 电化学发光, 超四面体硫簇半导体, 生化传感, 缺陷掺杂, 功能调控

Abstract:

Electrochemiluminescence (ECL) exhibits a broad application prospect in the field of biological analysis due to its unique performance features, and the exploitation of high efficient ECL reagents offers an important tool for the development of sensors with excellent performance and practical clinical applications. Open-framework supertetrahedral chalcogenide clusters both possess the porous structure of molecular sieve and the excellent optical properties of the semiconductor, so it has attracted more and more attention in ECL analysis. Different from the traditional semiconductor quantum dots, the structure and composition of supertetrahedral chalcogenide clusters can be accurately controlled at the atomic level, and supertetrahedral chalcogenide clusters itself can also be used as structural units to build semiconductor materials with a porous structure. These characteristics enable the accurate regulation in the properties of supertetrahedral chalcogenide clusters through atomic-level structure and composition adjustment, providing a reference for the development of ECL materials with superior performance, and thus expanding their application range in biochemical sensing, immunoassay, bioimaging, and so on. This review summarizes the research progresses in the synthesis, defect doping, functional regulation, and ECL biochemical analysis of supertetrahedral chalcogenide clusters, and provides some theoretical support for the development of new luminescent materials and the expansion of new applications in efficient ECL.

Key words:  electrochemiluminescence, supertetrahedral chalcogenide clusters, biochemical sensing, defect doping, functional regulation

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