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了解金属有机骨架/聚合物相容性的起源。

Understanding the origins of metal-organic framework/polymer compatibility.

作者信息

Semino R, Moreton J C, Ramsahye N A, Cohen S M, Maurin G

机构信息

Institut Charles Gerhardt Montpellier UMR 5253 CNRS , Université de Montpellier , Place E. Bataillon , 34095 Montpellier Cedex 05 , France . Email:

Department of Chemistry and Biochemistry , University of California , La Jolla , San Diego , California 92093-0358 , USA . Email:

出版信息

Chem Sci. 2017 Oct 27;9(2):315-324. doi: 10.1039/c7sc04152g. eCollection 2018 Jan 14.

Abstract

The microscopic interfacial structures for a series of metal-organic framework/polymer composites consisting of the Zr-based UiO-66 coupled with different polymers are systematically explored by applying a computational methodology that integrates density functional theory calculations and force field-based molecular dynamics simulations. These predictions are correlated with experimental findings to unravel the structure-compatibility relationship of the MOF/polymer pairs. The relative contributions of the intermolecular MOF/polymer interactions and the flexibility/rigidity of the polymer with respect to the microscopic structure of the interface are rationalized, and their impact on the compatibility of the two components in the resulting composite is discussed. The most compatible pairs among those investigated involve more flexible polymers, polyvinylidene fluoride (PVDF) and polyethylene glycol (PEG). These polymers exhibit an enhanced contact surface, due to a better adaptation of their configuration to the MOF surface. In these cases, the irregularities at the MOF surface are filled by the polymer, and even some penetration of the terminal groups of the polymer into the pores of the MOF can be observed. As a result, the affinity between the MOF and the polymer is very high; however, the pores of the MOF may be sterically blocked due to the strong MOF/polymer interactions, as evidenced by UiO-66/PEG composites. In contrast, composites involving polymers that exhibit higher rigidity, such as the polymer of intrinsic microporosity-1 (PIM-1) or polystyrene (PS), present interfacial microvoids that contribute to a decrease in the contact surface between the two components, thus reducing the MOF/polymer affinity.

摘要

通过应用一种整合密度泛函理论计算和基于力场的分子动力学模拟的计算方法,系统地探索了一系列由锆基金属有机框架UiO - 66与不同聚合物组成的金属有机框架/聚合物复合材料的微观界面结构。这些预测结果与实验结果相关联,以揭示金属有机框架/聚合物对的结构 - 相容性关系。分子间金属有机框架/聚合物相互作用以及聚合物的柔韧性/刚性对界面微观结构的相对贡献得到了合理的解释,并讨论了它们对所得复合材料中两种组分相容性的影响。在所研究的材料中,最相容的对涉及更具柔韧性的聚合物,聚偏氟乙烯(PVDF)和聚乙二醇(PEG)。由于它们的构型能更好地适应金属有机框架表面,这些聚合物表现出更大的接触面积。在这些情况下,金属有机框架表面的不规则处被聚合物填充,甚至可以观察到聚合物的端基有一些渗透到金属有机框架的孔中。结果,金属有机框架与聚合物之间的亲和力非常高;然而,由于金属有机框架/聚合物之间的强相互作用,金属有机框架的孔可能会被空间位阻堵塞,UiO - 66/PEG复合材料就证明了这一点。相比之下,涉及表现出更高刚性的聚合物的复合材料,如固有微孔聚合物 - 1(PIM - 1)或聚苯乙烯(PS),存在界面微空隙,这导致两种组分之间的接触面积减小,从而降低了金属有机框架/聚合物的亲和力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b719/5868319/5b63fe3a93a1/c7sc04152g-f1.jpg

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