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咪唑连接体的取代基(CH、Cl或Br)对沸石咪唑酯骨架结构(ZIF)-8苯吸附动力学的影响

Substitution (CH, Cl, or Br) effects of the imidazolate linker on benzene adsorption kinetics for the zeolitic imidazolate framework (ZIF)-8.

作者信息

Yagi Ryohei, Ueda Takahiro

机构信息

Department of Chemistry, Graduate School of Science, Osaka University, Toyonaka, Osaka 560-0043, Japan.

出版信息

Phys Chem Chem Phys. 2023 Aug 2;25(30):20585-20596. doi: 10.1039/d3cp01662e.

DOI:10.1039/d3cp01662e
PMID:37475665
Abstract

Herein, the time dependence of benzene adsorption uptake was examined for ZIF-8, Cl-ZIF-8, and Br-ZIF-8 and analysed using an intra-crystalline (Fick's) diffusion model, yielding the diffusion coefficient and saturated adsorption amount of benzene. The saturated adsorption amount of benzene decreased in the order of ZIF-8, Cl-ZIF-8, and Br-ZIF-8. Notably, ZIF-8, with an intermediate pore volume among the three specimens, accommodated the greatest number of molecules (5.5 molecules per micropore). The activation energy, , and the pre-exponential factor, , for benzene diffusion increased in the order of ZIF-8, Cl-ZIF-8, and Br-ZIF-8. These findings suggest that the 2-methylimidazolate moiety forms an effective attraction interaction with benzene molecules. The values also yielded the activation entropy, Δ, in the transition state when a benzene molecule passed through a six-membered ring aperture. The Δ values at 303 K were negative, and their absolute values increased in the order of Br-ZIF-8, Cl-ZIF-8, and ZIF-8. Considering the degree of freedom of translation and rotation of the benzene molecule and the vibration and disorder of the linker, we found that the differences in Δ were caused by the dynamic local structure of the six-membered ring aperture among the ZIF-8 analogues. Furthermore, infrared spectroscopy revealed a low-wavenumber shift of the C-H stretching band in both the imidazolate moiety and adsorbed benzene molecules. A solid-state C-nuclear magnetic resonance spectrum presented a downfield shift of C resonance peaks in the imidazolate moiety, suggesting that CH/π interactions reasonably explain the intermolecular interaction between the imidazolate moiety (including the methyl group) and π-electrons of benzene.

摘要

在此,研究了ZIF-8、Cl-ZIF-8和Br-ZIF-8对苯吸附量的时间依赖性,并使用晶体内(菲克)扩散模型进行分析,得出了苯的扩散系数和饱和吸附量。苯的饱和吸附量按ZIF-8、Cl-ZIF-8和Br-ZIF-8的顺序降低。值得注意的是,ZIF-8在三个样品中具有中等孔隙体积,容纳的分子数量最多(每个微孔5.5个分子)。苯扩散的活化能(E_a)和指前因子(A)按ZIF-8、Cl-ZIF-8和Br-ZIF-8的顺序增加。这些发现表明,2-甲基咪唑酸酯部分与苯分子形成了有效的吸引相互作用。这些(E_a)值还得出了苯分子通过六元环孔径时过渡态的活化熵(\Delta S^\neq)。303K时的(\Delta S^\neq)值为负,其绝对值按Br-ZIF-8、Cl-ZIF-8和ZIF-8的顺序增加。考虑到苯分子的平移和旋转自由度以及连接体的振动和无序性,我们发现(\Delta S^\neq)的差异是由ZIF-8类似物中六元环孔径的动态局部结构引起的。此外,红外光谱显示咪唑酸酯部分和吸附的苯分子中C-H伸缩带的低波数位移。固态碳核磁共振谱显示咪唑酸酯部分中C共振峰的低场位移,表明CH/π相互作用合理地解释了咪唑酸酯部分(包括甲基)与苯的π电子之间的分子间相互作用。

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