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基于符合库普曼斯定理的泛函的水的电子结构

Electronic Structure of Water from Koopmans-Compliant Functionals.

作者信息

de Almeida James Moraes, Nguyen Ngoc Linh, Colonna Nicola, Chen Wei, Rodrigues Miranda Caetano, Pasquarello Alfredo, Marzari Nicola

机构信息

Universidade Federal do ABC, Centro de Ciências Naturais e Humanas, Santo André, 09210-580 SP, Brazil.

Theory and Simulation of Materials (THEOS) and National Centre for Computational Design and Discovery of Novel Materials (MARVEL), Ecole Polytechnique Fédérale de Lausanne (EPFL), CH-1015 Lausanne, Switzerland.

出版信息

J Chem Theory Comput. 2021 Jul 13;17(7):3923-3930. doi: 10.1021/acs.jctc.1c00063. Epub 2021 Jun 17.

DOI:10.1021/acs.jctc.1c00063
PMID:34137253
Abstract

Obtaining a precise theoretical description of the spectral properties of liquid water poses challenges for both molecular dynamics (MD) and electronic structure methods. The lower computational cost of the Koopmans-compliant functionals with respect to Green's function methods allows the simulations of many MD trajectories, with a description close to the state-of-art quasi-particle self-consistent GW plus vertex corrections method (QSGW + ). Thus, we explore water spectral properties when different MD approaches are used, ranging from classical MD to first-principles MD, and including nuclear quantum effects. We have observed that different MD approaches lead to up to 1 eV change in the average band gap; thus, we focused on the band gap dependence with the geometrical properties of a system to explain such spread. We have evaluated the changes in the band gap due to variations in the intramolecular O-H bond distance and HOH angle, as well as the intermolecular hydrogen bond O···O distance and the OHO angles. We have observed that the dominant contribution comes from the O-H bond length; the O···O distance plays a secondary role, and the other geometrical properties do not significantly influence the gap. Furthermore, we analyze the electronic density of states (DOS), where the KIPZ functional shows good agreement with the DOS obtained with state-of-art approaches employing quasi-particle self-consistent GW plus vertex corrections. The O-H bond length also significantly influences the DOS. When nuclear quantum effects are considered, broadening of the peaks driven by the broader distribution of the O-H bond lengths is observed, leading to a closer agreement with the experimental photoemission spectra.

摘要

获得液态水光谱特性的精确理论描述对分子动力学(MD)和电子结构方法都构成了挑战。与格林函数方法相比,符合库普曼斯定理的泛函计算成本较低,这使得我们能够模拟许多MD轨迹,其描述接近最先进的准粒子自洽GW加顶点修正方法(QSGW + )。因此,我们探索了使用不同MD方法(从经典MD到第一性原理MD,包括核量子效应)时水的光谱特性。我们观察到,不同的MD方法会导致平均带隙变化高达1 eV;因此,我们专注于带隙与系统几何特性的相关性,以解释这种差异。我们评估了由于分子内O-H键距离和HOH角的变化,以及分子间氢键O···O距离和OHO角的变化而导致的带隙变化。我们观察到,主要贡献来自O-H键长度;O···O距离起次要作用,其他几何特性对带隙没有显著影响。此外,我们分析了电子态密度(DOS),其中KIPZ泛函与采用准粒子自洽GW加顶点修正的最先进方法获得的DOS显示出良好的一致性。O-H键长度也对DOS有显著影响。当考虑核量子效应时,观察到由于O-H键长度分布更宽而导致的峰展宽,这使得与实验光电子能谱的一致性更高。

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