Computational high-pressure chemistry: Ab initio simulations of atoms, molecules, and extended materials in the gigapascal regime

IF 16.8 2区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Wiley Interdisciplinary Reviews: Computational Molecular Science Pub Date : 2024-03-07 DOI:10.1002/wcms.1708
Felix Zeller, Chieh-Min Hsieh, Wilke Dononelli, Tim Neudecker
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Abstract

The field of liquid-phase and solid-state high-pressure chemistry has exploded since the advent of the diamond anvil cell, an experimental technique that allows the application of pressures up to several hundred gigapascals. To complement high-pressure experiments, a large number of computational tools have been developed. These techniques enable the simulation of chemical systems, their sizes ranging from single atoms to infinitely large crystals, under high pressure, and the calculation of the resulting structural, electronic, and spectroscopic changes. At the most fundamental level, computational methods using carefully tailored wall potentials allow the analytical calculation of energies and electronic properties of compressed atoms. Molecules and molecular clusters can be compressed either via mechanochemical approaches or via more sophisticated computational protocols using implicit or explicit solvation approaches, typically in combination with density functional theory, thus allowing the simulation of pressure-induced chemical reactions. Crystals and other periodic systems can be routinely simulated under pressure as well, both statically and dynamically, to predict the changes of crystallographic data under pressure and high-pressure crystal structure transitions. In this review, the theoretical foundations of the available computational tools for simulating high-pressure chemistry are introduced and example applications demonstrating the strengths and weaknesses of each approach are discussed.

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计算高压化学:原子、分子和扩展材料在千兆帕制度下的 Ab initio 模拟
金刚石砧式样品池是一种可以应用高达几百吉帕斯卡压力的实验技术,自其问世以来,液相和固态高压化学领域出现了爆炸性的发展。作为高压实验的补充,大量计算工具应运而生。这些技术可以在高压下模拟从单个原子到无限大晶体的化学体系,并计算由此产生的结构、电子和光谱变化。在最基本的层面上,利用精心定制的壁势计算方法,可以对压缩原子的能量和电子特性进行分析计算。分子和分子团簇可以通过机械化学方法进行压缩,也可以通过使用隐式或显式溶解方法(通常与密度泛函理论相结合)的更复杂计算协议进行压缩,从而可以模拟压力诱导的化学反应。晶体和其他周期系统也可以在压力下进行常规模拟,包括静态和动态模拟,以预测压力和高压晶体结构转换下晶体学数据的变化。在这篇综述中,介绍了模拟高压化学的现有计算工具的理论基础,并讨论了展示每种方法优缺点的应用实例:
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来源期刊
Wiley Interdisciplinary Reviews: Computational Molecular Science
Wiley Interdisciplinary Reviews: Computational Molecular Science CHEMISTRY, MULTIDISCIPLINARY-MATHEMATICAL & COMPUTATIONAL BIOLOGY
CiteScore
28.90
自引率
1.80%
发文量
52
审稿时长
6-12 weeks
期刊介绍: Computational molecular sciences harness the power of rigorous chemical and physical theories, employing computer-based modeling, specialized hardware, software development, algorithm design, and database management to explore and illuminate every facet of molecular sciences. These interdisciplinary approaches form a bridge between chemistry, biology, and materials sciences, establishing connections with adjacent application-driven fields in both chemistry and biology. WIREs Computational Molecular Science stands as a platform to comprehensively review and spotlight research from these dynamic and interconnected fields.
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