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量化金属有机框架中的热无序:杂化甲酸盐钙钛矿的晶格动力学和分子动力学模拟

Quantifying Thermal Disorder in Metal-Organic Frameworks: Lattice Dynamics and Molecular Dynamics Simulations of Hybrid Formate Perovskites.

作者信息

Svane Katrine L, Walsh Aron

机构信息

Department of Chemistry, University of Bath , Bath, United Kingdom.

Department of Chemistry, University of Bath, Bath, United Kingdom; Department of Materials, Imperial College London, London, United Kingdom.

出版信息

J Phys Chem C Nanomater Interfaces. 2017 Jan 12;121(1):421-429. doi: 10.1021/acs.jpcc.6b10714. Epub 2016 Dec 12.

Abstract

Hybrid organic-inorganic materials are mechanically soft, leading to large thermoelastic effects which can affect properties such as electronic structure and ferroelectric ordering. Here we use a combination of ab initio lattice dynamics and molecular dynamics to study the finite temperature behavior of the hydrazinium and guanidinium formate perovskites, [NHNH][Zn(CHO)] and [C(NH)][Zn(CHO)]. Thermal displacement parameters and ellipsoids computed from the phonons and from molecular dynamics trajectories are found to be in good agreement. The hydrazinium compound is ferroelectric at low temperatures, with a calculated spontaneous polarization of 2.6 μC cm, but the thermal movement of the cation leads to variations in the instantaneous polarization and eventually breakdown of the ferroelectric order. Contrary to this the guanidinium cation is found to be stationary at all temperatures; however, the movement of the cage atoms leads to variations in the electronic structure and a renormalization in the bandgap from 6.29 eV at 0 K to an average of 5.96 eV at 300 K. We conclude that accounting for temperature is necessary for quantitative modeling of the physical properties of metal-organic frameworks.

摘要

有机-无机杂化材料在机械性能上较为柔软,会产生较大的热弹性效应,这可能会影响诸如电子结构和铁电有序等性质。在此,我们结合第一性原理晶格动力学和分子动力学来研究肼基甲酸锌和胍基甲酸锌钙钛矿[NHNH][Zn(CHO)]和[C(NH)][Zn(CHO)]的有限温度行为。从声子和分子动力学轨迹计算得到的热位移参数和椭球体结果吻合良好。肼基化合物在低温下是铁电体,计算得到的自发极化强度为2.6 μC cm,但阳离子的热运动导致瞬时极化发生变化,最终铁电有序被破坏。与此相反,发现胍基阳离子在所有温度下都是静止的;然而,笼状原子的运动导致电子结构发生变化,带隙从0 K时的6.29 eV重整化为300 K时平均5.96 eV。我们得出结论,考虑温度对于金属有机框架物理性质的定量建模是必要的。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b0b6/5345892/b2bb6b6c3a9d/jp-2016-10714u_0001.jpg

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