Citation: Jin Fengming, Dong Hongwei, Zhao Yan, Zhuang Shengli, Liao Lingwen, Yan Nan, Gu Wanmiao, Zha Jun, Yuan Jinyun, Li Jin, Deng Haiteng, Gan Zibao, Yang Jinlong, Wu Zhikun. Module Replacement of Gold Nanoparticles by a Pseudo-AGR Process[J]. Acta Chimica Sinica, ;2020, 78(5): 407-411. doi: 10.6023/A20040134 shu

Module Replacement of Gold Nanoparticles by a Pseudo-AGR Process

  • Corresponding author: Gan Zibao, zbgan@iim.ac.cn Wu Zhikun, zkwu@issp.ac.cn
  • † These authors contributed equally to this work.
  • Received Date: 30 April 2020
    Available Online: 1 May 2020

    Fund Project: the National Natural Science Foundation of China 21603234the National Natural Science Foundation of China 21222301China Postdoctoral Science Foundation Y94G4E356Bthe National Natural Science Foundation of China 21971246CAS/SAFEA International Partnership Program for Creative Research Teams and Innovative Program of Development Foundation of Hefei Center for Physical Science and Technology 2017FXCX002CASHIPS Director's Fund BJPY2019A02the National Natural Science Foundation of China 21905284Project supported by the National Natural Science Foundation of China (Nos. 21925303, 21971246, 21829501, 21905284, 21771186, 21603234, 21222301, 21171170, 21528303), China Postdoctoral Science Foundation (Y94G4E356B), CASHIPS Director's Fund (BJPY2019A02), Key Program of 13th five-year plan, CASHIPS (KP-2017-16), CAS/SAFEA International Partnership Program for Creative Research Teams and Innovative Program of Development Foundation of Hefei Center for Physical Science and Technology (2017FXCX002)the National Natural Science Foundation of China 21171170the National Natural Science Foundation of China 21771186Key Program of 13th five-year plan, CASHIPS KP-2017-16the National Natural Science Foundation of China 21925303the National Natural Science Foundation of China 21829501the National Natural Science Foundation of China 21528303

Figures(6)

  • Precisely modulating the structure of nanoparticles in a controlled manner is still a challenging and inspiring topic. Although the single or few-metal atom tailoring of gold nanoparticles has been reported, local structural replacement involving over three net metal atoms (module replacement, MR) has not been hitherto achieved. Herein, we report the synthesis of cyclohexanethiolated metal nanoclusters (NCs) Au48(CHT)26 and their MR by a so-called pseudo-anti-galvanic reaction (AGR) process. The MR product Au37(CHT)23 shares a similar Au31(CHT)12 unit with its predecessor Au48(CHT)26; however, it differs from its predecessor in the remaining section (Au6(CHT)11 vs. Au16(CHT)14), as revealed by single-crystal X-ray crystallography (SCXC). Interestingly, the MR inhibits the photothermy but enhances the emission of Au48(CHT)26 NCs, which might endow the as-obtained NC better potential for bi(multiple)-functional application. The counter effects of the MR on the emission and photothermy indicate that photoluminescence and photothermy can be at least partly converted into each other, which has some important implications for the understanding of their interaction.
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