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Molecular Hydrogen “Pairing” Interaction in a Metal Organic Framework System with Unsaturated Metal Centers (MOF-74)

机译:具有不饱和金属中心的金属有机骨架系统中的分子氢“配对”相互作用(MOF-74)

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摘要

Infrared (IR) absorption spectroscopy measurements of molecular hydrogen in MOF-74-M (M = metal center) are performed as a function of temperature and pressure [to 45 kTorr (60 bar) at 300 K, and at lower pressures in the 20−200 K range] to investigate the nature of H2 interactions with the unsaturated metal centers. A small shift ( −30 cm−1 with respect to the unperturbed H2 molecule) is observed for the internal stretch frequency of H2 molecules adsorbed on the metal site at low loading. This finding is in contrast to much larger shifts ( −70 cm−1) observed in previous studies of MOFs with unsaturated metal centers (including MOF-74) and the general assumption that H2 stretch shifts depend on adsorption energies (FitzGerald et al., Phys. Rev. B 2010, 81, 104305). We show that larger shifts ( −70 cm−1) do occur, but only when the next available site (“oxygen” site) is occupied. This larger shift originates from H2−H2 interactions on neighboring sites of the same pore, consistent with the short distance between H2 in these two sites 2.6 Å derived from an analysis of neutron diffraction experiments of D2−D2 at 4 K (Liu et al., Langmuir 2008, 24, 4772−4777). Our results at 77 K and low loading can be explained by a diffusion barrier against pair disruption, which should be enhanced by this interaction. Calculations indicate that the vibrational shifts do not correlate with binding energies and are instead very sensitive to the environment (interaction potential and H2−H2 interactions), which complicates the use of variable temperature IR methods to calculate adsorption energies of specific adsorption sites.
机译:MOF-74-M中分子氢的红外(IR)吸收光谱测量(M =金属中心)是温度和压力的函数[在300 K时为45 kTorr(60 bar),在20 K时为较低压力-200 K范围]以研究H 2 与不饱和金属中心相互作用的性质。观察到H 2 分子的内部拉伸频率有一个小位移(相对于未受干扰的H 2 分子为−30 cm -1 )低负荷时吸附在金属部位。此发现与先前对具有不饱和金属中心的MOF(包括MOF-74)的研究(H 2 <拉伸位移取决于吸附能(FitzGerald等,Phys.Rev.B 2010,81,104305)。我们显示确实发生了较大的偏移(−70 cm -1 ),但仅当下一个可用的位置(“氧气”位置)被占用时才发生。较大的位移源自相同孔的相邻位置上的H 2 -H 2 相互作用,这与这些孔中H 2 之间的短距离一致根据D 2 -D 2 在4 K下的中子衍射实验分析得出的两个2.6Å位置(Liu等人,Langmuir 2008,24,4772−4777) 。我们在77 K和低负载下的结果可以用针对偶对破坏的扩散势垒来解释,应该通过这种相互作用来增强这种势垒。计算表明,振动位移与结合能无关,而是对环境非常敏感(相互作用势和H 2 -H 2 相互作用),这使使用变得复杂可变温度IR方法计算特定吸附位点的吸附能。

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  • 来源
    《Journal of the American Chemical Society》 |2010年第42期|p.14834-14848|共15页
  • 作者

    Nour Nijem;

  • 作者单位

    Department of Materials Science & Engineering, University of Texas at Dallas, Richardson, Texas 75080, United States, Department of Physics and Astronomy, Rutgers University, 610 Taylor Road, Piscataway, New Jersey 08854, United States, and Department of;

  • 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
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  • 入库时间 2022-08-18 00:50:26

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