4.5 Article

A Computational Study of Isopropyl Alcohol Adsorption and Diffusion in UiO-66 Metal-Organic Framework: The Role of Missing Linker Defect

Journal

JOURNAL OF PHYSICAL CHEMISTRY B
Volume 125, Issue 14, Pages 3690-3699

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.jpcb.0c11252

Keywords

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Funding

  1. DTRA [HDTRA11910008]
  2. National Natural Science Foundation of China [22008107]
  3. U.S. Department of Defense (DOD) [HDTRA11910008] Funding Source: U.S. Department of Defense (DOD)

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Defect engineering can manipulate the properties of metal-organic frameworks, with missing linkers impacting adsorption and self-diffusion in MOFs. The strength of interaction between unsaturated metal sites and adsorbates affects the self-diffusion rate.
Defect engineering leads to an effective manipulation of the physical and chemical properties of metal-organic frameworks (MOFs). Taking the common missing linker defect as an example, the defective MOF generally possesses larger pores and a greater surface area/volume ratio, both of which favor an increased amount of adsorption. When it comes to the self-diffusion of adsorbates in MOFs, however, the missing linker is a double-edged sword: the unsaturated metal sites, due to missing linkers, could interact more strongly with adsorbates and result in a slower self-diffusion. Therefore, it is of fundamental importance to evaluate the two competing factors and reveal which one is dominating, a faster self-diffusion due to larger volume or a slower self-diffusion owing to strong interactions at unsaturated sites. In this work, via Monte Carlo and molecular dynamics simulations, we investigate the behavior of isopropyl alcohol (IPA) in the Zr-based UiO-66 MOFs, with a specific focus on the missing linker effects. The results reveal that unsaturated Zr sites bind strongly with IPA molecules, which in return would significantly reduce the self-diffusion coefficient of IPA. Besides this, for the same level of missing linkers, the location of defective sites also makes a difference. We expect such a theoretical study will provide an in-depth understanding of self-diffusion under confinement, inspire better defect engineering strategics, and promote MOF based materials toward challenging real-life applications.

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