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超越柔性预期:基于三维连接体的金属有机框架结构柔性的实验与计算联合研究

Exceeding flexpectations: a combined experimental and computational investigation of structural flexibility in 3-dimensional linker-based metal-organic frameworks.

作者信息

Smoljan Courtney S, Formalik Filip, Barsoum Michael L, Fahy Kira M, Gaidimas Madeleine A, Son Florencia A, Xie Haomiao, Idrees Karam B, Farha Omar K, Snurr Randall Q

机构信息

Department of Chemical and Biological Engineering, Northwestern University Evanston IL 60208 USA

Department of Micro, Nano, and Bioprocess Engineering, Faculty of Chemistry, Wroclaw University of Science and Technology Wroclaw 50-370 Poland.

出版信息

Chem Sci. 2025 Feb 10;16(11):4831-4841. doi: 10.1039/d4sc06360k. eCollection 2025 Mar 12.

Abstract

Designing sorbents for the separation of molecules with sub-angstrom differences in size requires precise control over pore size and environment, which can be challenging to establish in the presence of structural flexibility. However, metal-organic frameworks (MOFs) that incorporate 3-dimensional (3D) linkers-ditopic ligands with 3-dimensional, sterically bulky cores-are well-suited to address this challenge, as 3D linkers enable sub-angstrom level control over pore size by mitigating the effects of structural flexibility. In this study, we used a combined computational and experimental approach to quantify flexibility in two systems of MOFs with increasing linker bulkiness, leveraging these systems to distinguish between two classes of flexibility: global and local. Specifically, we used density functional theory (DFT) calculations to understand the electronic energy landscapes of MIL-53(Al), MIL-47(V) and their corresponding 3D linker analogues of increasing bulkiness. We further characterized the mechanical properties of these materials with DFT calculations of elastic tensors and in practical compression conditions using variable pressure X-ray diffraction experiments. Finally, we illustrated the importance of establishing sub-angstrom level pore control by demonstrating the effects of each type of flexibility on the adsorption properties of MOFs using grand canonical Monte Carlo simulations.

摘要

设计用于分离尺寸差异在亚埃级别的分子的吸附剂需要对孔径和环境进行精确控制,而在存在结构灵活性的情况下,这可能具有挑战性。然而,包含三维(3D)连接体——具有三维、空间位阻大的核心的双齿配体——的金属有机框架(MOF)非常适合应对这一挑战,因为三维连接体通过减轻结构灵活性的影响,能够实现亚埃级别的孔径控制。在本研究中,我们采用计算与实验相结合的方法,对两种连接体体积不断增大的MOF体系中的灵活性进行量化,利用这些体系区分两类灵活性:全局灵活性和局部灵活性。具体而言,我们使用密度泛函理论(DFT)计算来了解MIL-53(Al)、MIL-47(V)及其相应的体积不断增大的三维连接体类似物的电子能量景观。我们通过弹性张量的DFT计算以及在实际压缩条件下使用可变压力X射线衍射实验,进一步表征了这些材料的力学性能。最后,我们通过使用巨正则蒙特卡罗模拟展示每种灵活性对MOF吸附性能的影响,说明了建立亚埃级孔径控制的重要性。

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