基于周期自举嵌入的二维周期系统中的电子相关

IF 4.6 2区 化学 Q2 CHEMISTRY, PHYSICAL
Oinam Romesh Meitei*,  and , Troy Van Voorhis*, 
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引用次数: 0

摘要

鉴于二维材料在各种光电应用中的重要性日益增加,必须有能够准确有效地描述这些系统中电子相关效应的仿真工具。在这里,我们证明了最近发展的自举嵌入(BE)准确地预测了二维系统的电子相关能和结构性质。在不明确依赖于相关计算中的互反空间和(k点)的情况下,我们的概念验证计算表明,在二维半金属、绝缘体和半导体中,BE通常可以恢复最小基电子相关能的99.5%。我们证明了该方法可以高精度地预测二维系统的晶格常数和体模量。此外,我们强调了BE处理含有数百个碳原子的大单位电池的扭曲双层石墨烯超晶格中的电子相关性的能力。我们发现,随着扭转角向魔角减小,相关能开始减小,随后增加。我们得出结论,BE是一种很有前途的电子结构方法,未来将应用于二维材料。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Electron Correlation in 2D Periodic Systems from Periodic Bootstrap Embedding

Electron Correlation in 2D Periodic Systems from Periodic Bootstrap Embedding

Given the growing significance of 2D materials in various optoelectronic applications, it is imperative to have simulation tools that can accurately and efficiently describe electron correlation effects in these systems. Here, we show that the recently developed bootstrap embedding (BE) accurately predicts electron correlation energies and structural properties for 2D systems. Without explicit dependence on the reciprocal space sum (k-points) in the correlation calculation, our proof-of-concept calculations shows that BE can typically recover ∼99.5% of the total minimal basis electron correlation energy in 2D semimetal, insulator, and semiconductors. We demonstrate that BE can predict lattice constants and bulk moduli for 2D systems with high precision. Furthermore, we highlight the capability of BE to treat electron correlation in twisted bilayer graphene superlattices with large unit cells containing hundreds of carbon atoms. We find that as the twist angle decreases toward the magic angle, the correlation energy initially decreases in magnitude, followed by a subsequent increase. We conclude that BE is a promising electronic structure method for future applications to 2D materials.

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来源期刊
The Journal of Physical Chemistry Letters
The Journal of Physical Chemistry Letters CHEMISTRY, PHYSICAL-NANOSCIENCE & NANOTECHNOLOGY
CiteScore
9.60
自引率
7.00%
发文量
1519
审稿时长
1.6 months
期刊介绍: The Journal of Physical Chemistry (JPC) Letters is devoted to reporting new and original experimental and theoretical basic research of interest to physical chemists, biophysical chemists, chemical physicists, physicists, material scientists, and engineers. An important criterion for acceptance is that the paper reports a significant scientific advance and/or physical insight such that rapid publication is essential. Two issues of JPC Letters are published each month.
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