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Self-Assembly of Metallo-Supramolecules under Kinetic or Thermodynamic Control: Characterization of Positional Isomers Using Scanning Tunneling Spectroscopy

机译:在动力学或热力控制下金属 - 超分子的自组装:使用扫描隧道光谱的位置异构体的表征

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摘要

Coordination-driven self-assembly has been extensively employed to construct a variety of discrete structures as a bottom-up strategy. However, mechanistic understanding regarding whether self-assembly is under kinetic or thermodynamic control is less explored. To date, such mechanistic investigation has been limited to distinct, assembled structures. It still remains a formidable challenge to study the kinetic and thermodynamic behavior of self-assembly systems with multiple assembled isomers due to the lack of characterization methods. Herein, we use a stepwise strategy which combined self-recognition and self-assembly processes to construct giant metallo-supramolecules with 8 positional isomers in solution. With the help of ultrahigh-vacuum, low-temperature scanning tunneling microscopy and scanning tunneling spectroscopy, we were able to unambiguously differentiate 14 isomers on the substrate which correspond to 8 isomers in solution. Through measurement of 162 structures, the experimental probability of each isomer was obtained and compared with the theoretical probability. Such a comparison along with density functional theory (DFT) calculation suggested that although both kinetic and thermodynamic control existed in this self-assembly, the increased experimental probabilities of isomers compared to theoretical probabilities should be attributed to thermodynamic control.
机译:协调驱动的自组装已经广泛用于构造各种离散结构作为自下而上的策略。然而,关于自我组装是否处于动力学或热力学控制的机械理解不太探索。迄今为止,这种机械调查仅限于不同的组装结构。在缺乏表征方法的情况下,研究自组装系统的自组装系统的动力动力学行为仍然是一个强大的挑战。在此,我们使用逐步策略组合自识别和自组装过程,以构建溶液中具有8个位置异构体的巨型金属 - 超分子。借助超高真空,低温扫描隧道显微镜和扫描隧道光谱,我们能够明确地将14个异构体与溶液中的8个异构体分化。通过测量162结构,获得每个异构体的实验概率并与理论概率进行比较。这种比较以及密度泛函理论(DFT)计算表明,尽管在这种自组装中存在动力动力学和热力学控制,但与理论概率相比,异构体的实验概率增加应归因于热力学控制。

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  • 来源
    《Journal of the American Chemical Society》 |2020年第21期|9809-9817|共9页
  • 作者单位

    Department of Chemistry University of South Florida Tampa Florida 33620 United States;

    Department of Chemistry University of South Florida Tampa Florida 33620 United States;

    Department of Chemistry University of South Florida Tampa Florida 33620 United States;

    Department of Materials Science and Engineering University of North Texas Denton Texas 76203 United States;

    State Key Laboratory of Supramolecular Structure and Materials College of Chemistry Jilin University Changchun Jilin 130012 China;

    State Key Laboratory of Supramolecular Structure and Materials College of Chemistry Jilin University Changchun Jilin 130012 China;

    Department of Chemistry University of South Florida Tampa Florida 33620 United States College of Chemistry Zhengzhou University Zhengzhou Henan 450052 China;

    College of Chemistry Zhengzhou University Zhengzhou Henan 450052 China;

    Department of Materials Science and Engineering University of North Texas Denton Texas 76203 United States;

    Nanoscience and Technology Division Argonne National Laboratory Lemont Illinois 60439 United States Department of Physics Old Dominion University Norfolk Virginia 23529 United States;

    Nanoscience and Technology Division Argonne National Laboratory Lemont Illinois 60439 United States;

    Department of Chemistry University of South Florida Tampa Florida 33620 United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 22:16:44

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