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Electron Density and Dielectric Properties of Highly Porous MOFs: Binding and Mobility of Guest Molecules in Cu_3(BTC)_2 and Zn_3(BTC)_2

机译:高孔MOF的电子密度和介电性能:Cu_3(BTC)_2和Zn_3(BTC)_2中的客体分子的结合和迁移率

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摘要

Two isostructural highly porous metal--organic frameworks, the well-known {Cu-3(BTC)(2)}(n) (BTC = 1,3,5-benzenetricarboxylate), often appointed with the name HKUST-1, and {Zn-3(BTC)(2)}(n), have been investigated as models for the buildup of dielectric properties, differentiating the role of chemi- and physisorbed guest molecules and that of specific intraframework and framework-guest linkages. For this purpose, electron charge density analysis, impedance spectroscopy, density functional theory simulations, and atomic partitioning of the polarizabilities have been exploited. These analyses at different degrees of pores filling enabled one to observe structural and electronic changes induced by guest molecules, especially when chemisorbed. The electrostatic potential inside the pores allows one to describe the absorption mechanism and to estimate the polarization of guests induced by the framework. The dielectric constant shows very diverse frequency dependence and magnitude of real and imaginary components as a consequence of (I) capture of guest molecules in the pores during synthesis, (II) MOF activation, and (III) water absorption from the atmosphere after activation. Comparison with calculated static-dielectric constant and atomic polarizabilities of the material has allowed for evaluating building blocks' contribution to the overall property, paving the way for reverse crystal engineering of these species.
机译:两种肌瘤高度多孔金属 - 有机框架,众所周知的{Cu-3(BTC)(2)}(N)(BTC = 1,3,5-苯并甲酸盐),通常由名称HKust-1,和已被调查为介电性质的积聚的模型,区分了化学和物理化的作用以及特定的造型内部的帧质和框架 - 访客键的模型。{ZN-3(BTC)(2)}(N)已被调查为模型。为此目的,已经利用了电子电荷密度分析,阻抗光谱,密度泛函理论模拟和原子分配的偏振性。这些分析在不同程度的孔隙填充,使能观察客体分子引起的结构和电子变化,特别是在化学吸附时。孔内的静电电位允许人们描述吸收机制并估计框架引起的客人的极化。介电常数显示出非常多样化的频率依赖性和真实和虚部的幅度,因此(i)在合成期间的孔中的客体分子捕获,(ii)MOF活化,(III)活化后的气氛吸收。与计算的静电介电常数和材料的原子偏振的比较已经允许评估建筑物对整体性质的贡献,为这些物种的反向晶体工程铺平道路。

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  • 来源
    《Journal of the American Chemical Society》 |2019年第23期|9382-9390|共9页
  • 作者单位

    Univ Bern Dept Chem & Biochem Freiestr 3 CH-3012 Bern Switzerland;

    Univ Bern Dept Chem & Biochem Freiestr 3 CH-3012 Bern Switzerland|EPFL Lab Nanochem Energy Rue Ind 17 CH-1951 Sion Switzerland;

    Univ Bern Dept Chem & Biochem Freiestr 3 CH-3012 Bern Switzerland|Politecn Milan Dept Chem Mat & Chem Engn Via Mancinelli 7 I-20131 Milan Italy;

  • 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);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
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  • 入库时间 2022-08-18 22:16:40

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