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使用先进分子动力学模拟高效构建呼吸金属有机框架的自由能剖面图

Efficient Construction of Free Energy Profiles of Breathing Metal-Organic Frameworks Using Advanced Molecular Dynamics Simulations.

作者信息

Demuynck Ruben, Rogge Sven M J, Vanduyfhuys Louis, Wieme Jelle, Waroquier Michel, Van Speybroeck Veronique

机构信息

Center for Molecular Modeling (CMM), Ghent University , Technologiepark 903, B-9052 Zwijnaarde, Belgium.

出版信息

J Chem Theory Comput. 2017 Dec 12;13(12):5861-5873. doi: 10.1021/acs.jctc.7b01014. Epub 2017 Dec 1.

Abstract

In order to reliably predict and understand the breathing behavior of highly flexible metal-organic frameworks from thermodynamic considerations, an accurate estimation of the free energy difference between their different metastable states is a prerequisite. Herein, a variety of free energy estimation methods are thoroughly tested for their ability to construct the free energy profile as a function of the unit cell volume of MIL-53(Al). The methods comprise free energy perturbation, thermodynamic integration, umbrella sampling, metadynamics, and variationally enhanced sampling. A series of molecular dynamics simulations have been performed in the frame of each of the five methods to describe structural transformations in flexible materials with the volume as the collective variable, which offers a unique opportunity to assess their computational efficiency. Subsequently, the most efficient method, umbrella sampling, is used to construct an accurate free energy profile at different temperatures for MIL-53(Al) from first principles at the PBE+D3(BJ) level of theory. This study yields insight into the importance of the different aspects such as entropy contributions and anharmonic contributions on the resulting free energy profile. As such, this thorough study provides unparalleled insight in the thermodynamics of the large structural deformations of flexible materials.

摘要

为了从热力学角度可靠地预测和理解高度柔性金属有机框架的呼吸行为,准确估计其不同亚稳态之间的自由能差是一个先决条件。在此,对多种自由能估计方法构建自由能曲线(作为MIL-53(Al)晶胞体积的函数)的能力进行了全面测试。这些方法包括自由能微扰、热力学积分、伞形采样、元动力学和变分增强采样。在这五种方法的框架内进行了一系列分子动力学模拟,以体积作为集体变量来描述柔性材料中的结构转变,这为评估它们的计算效率提供了独特的机会。随后,使用最有效的方法——伞形采样,在PBE+D3(BJ)理论水平上从第一性原理构建了不同温度下MIL-53(Al)的精确自由能曲线。这项研究深入了解了熵贡献和非谐贡献等不同方面对所得自由能曲线的重要性。因此,这项深入研究为柔性材料大结构变形的热力学提供了无与伦比的见解。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7394/5729547/6814526586a7/ct-2017-010146_0001.jpg

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