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库普曼斯与贝特-萨尔皮特相遇:无需GW的激子光学光谱

Koopmans Meets Bethe-Salpeter: Excitonic Optical Spectra without GW.

作者信息

Elliott Joshua D, Colonna Nicola, Marsili Margherita, Marzari Nicola, Umari Paolo

机构信息

Dipartimento di Fisica e Astronomia , Università Degli Studi di Padova , via Marzolo 8 , I-35131 Padova , Italy.

CNR-IOM DEMOCRITOS , Consiglio Nazionale delle Ricerche, Istituto Officina dei Materiali , c/o SISSA, Via Bonomea 265 , 34136 Trieste , Italy.

出版信息

J Chem Theory Comput. 2019 Jun 11;15(6):3710-3720. doi: 10.1021/acs.jctc.8b01271. Epub 2019 May 7.

DOI:10.1021/acs.jctc.8b01271
PMID:30998361
Abstract

The Bethe-Salpeter equation (BSE) can be applied to compute from first-principles optical spectra that include the effects of screened electron-hole interactions. As input, BSE calculations require single-particle states, quasiparticle energy levels, and the screened Coulomb interaction, which are typically obtained with many-body perturbation theory, whose cost limits the scope of possible applications. This work tries to address this practical limitation, instead deriving spectral energies from Koopmans-compliant functionals and introducing a new methodology for handling the screened Coulomb interaction. The explicit calculation of the W matrix is bypassed via a direct minimization scheme applied on top of a maximally localized Wannier function basis. We validate and benchmark this approach by computing the low-lying excited states of the molecules in Thiel's set and the optical absorption spectrum of a C fullerene. The results show the same trends as quantum chemical methods and are in excellent agreement with previous simulations carried out at the time-dependent density functional theory or G W-BSE level. Conveniently, the new framework reduces the parameter space controlling the accuracy of the calculation, thereby simplifying the simulation of charge-neutral excitations, offering the potential to expand the applicability of first-principles spectroscopies to larger systems of applied interest.

摘要

贝特-萨尔皮特方程(BSE)可用于从第一性原理计算包含屏蔽电子-空穴相互作用效应的光谱。作为输入,BSE计算需要单粒子态、准粒子能级和屏蔽库仑相互作用,这些通常通过多体微扰理论获得,而其计算成本限制了可能的应用范围。这项工作试图解决这一实际限制,转而从符合库普曼斯定理的泛函中推导光谱能量,并引入一种处理屏蔽库仑相互作用的新方法。通过在最大局域化万尼尔函数基之上应用直接最小化方案,绕过了W矩阵的显式计算。我们通过计算蒂尔集合中分子的低激发态和C富勒烯的光吸收光谱,对该方法进行了验证和基准测试。结果显示出与量子化学方法相同的趋势,并且与当时在含时密度泛函理论或GW - BSE水平上进行的先前模拟结果非常吻合。方便的是,新框架减少了控制计算精度的参数空间,从而简化了电荷中性激发的模拟,为将第一性原理光谱学的适用性扩展到更大的实际应用系统提供了潜力。

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