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Koopmans Meets Bethe-Salpeter: Excitonic Optical Spectra without GW

机译:koopmans遇到了贝特 - 萨尔珀:没有GW的激发光谱

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摘要

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-60 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(0)W(0)-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.
机译:可以应用贝特卡尔仪等式(BSE)来计算包括屏蔽电子空穴相互作用的效果的第一原理光谱。作为输入,BSE计算需要单粒子状态,Quasiplicale能量水平和筛选的库仑相互作用,其通常用许多身体扰动理论获得,其成本限制了可能的应用的范围。这项工作试图解决这种实际限制,而是从符合Koopmans的函数的谱能量推导出频谱能量,并引入用于处理屏蔽库仑相互作用的新方法。通过应用于最大局部的WANNIER功能的基础上应用的直接最小化方案来绕过W矩阵的显式计算。我们通过计算泰尔集合中分子的低洼激发态和C-60富勒烯的光学吸收光谱来验证和基准这种方法。结果表明与量子化学方法相同的趋势,并且与以时间依赖性密度泛函理论或G(0)W(0)-BSE级别进行的先前模拟的同意。方便地,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励的模拟,提供了扩展第一原理光谱到更大的应用兴趣系统的适用性的可能性。

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