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首页> 外文期刊>The Journal of Chemical Physics >Simulating the absorption spectra of helium clusters (N=70, 150, 231, 300) using a charge transfer correction to superposition of fragment single excitations
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Simulating the absorption spectra of helium clusters (N=70, 150, 231, 300) using a charge transfer correction to superposition of fragment single excitations

机译:使用电荷转移校正模拟氦簇(n = 70,150,331,300)的吸收光谱与片段单激励的叠加

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Simulations of the n = 2 absorption spectra of HeN (N = 70, 150, 231, 300) clusters are reported, with nuclear configurations sampled by path integral molecular dynamics. The electronic structure is treated by a new approach, ALMO-CIS+CT, which is a formulation of configuration interaction singles (CIS) based on absolutely localized molecular orbitals (ALMOs). The method generalizes the previously reported ALMO-CIS model [K. D. Closser et al. J. Chem. Theory Comput. 11, 5791 (2015)] to include spatially localized charge transfer (CT) effects. It is designed to recover large numbers of excited states in atomic and molecular clusters, such as the entire n = 2 Rydberg band in helium clusters. ALMO-CIS+ CT is shown to recover most of the error caused by neglecting charge transfer in ALMO-CIS and has comparable accuracy to standard CIS for helium clusters. For the n = 2 band, CT stabilizes states towards the blue edge by up to 0.5 eV. ALMO-CIS+ CT retains the formal cubic scaling of ALMO-CIS with respect to system size. With improvements to the implementation over that originally reported for ALMO-CIS, ALMO-CIS+ CT is able to treat helium clusters with hundreds of atoms using modest computing resources. A detailed simulation of the absorption spectra associated with the 2s and 2p bands of helium clusters up to 300 atoms is reported, using path integral molecular dynamics with a spherical boundary condition to generate atomic configurations at 3 K. The main features of experimentally reported fluorescence excitation spectra for helium clusters are reproduced. Published by AIP Publishing.
机译:报告了母鸡(n = 70,150,331,300)簇的n = 2吸收光谱的仿真,通过路径整体分子动力学采样核配置。通过一种新方法,Almo-CIS + CT处理电子结构,其是基于绝对局部分子轨道(ALMOS)的构型相互作用单打(顺式)的配方。方法推广先前报道的ALMO-CIS模型[K. D. Closser等人。 J.Chem。理论计算。 11,5791(2015)]包括空间局部电荷转移(CT)效应。它旨在恢复原子和分子簇中的大量激发态,例如氦簇中的整个n = 2 rydberg带。 Almo-CIS + CT显示在Almo-CIS中忽略忽略电荷转移的大部分误差,并对氦簇具有相当的准确性。对于n = 2频段,CT通过高达0.5eV稳定朝向蓝色边缘的状态。 Almo-CIS + CT在系统尺寸方面保留了ALMO-CI的正式立方缩放。随着最初报道的Almo-CIS的实施方式,Almo-CIS + CT能够使用适度的计算资源将氦簇与数百个原子进行治疗。报告使用具有球形边界条件的路径整体分子动态,以3 k产生的路径整体分子动力学,将具有球形边界条件的路径整体分子动态相关的吸收光谱的详细模拟。在3 k下产生原子配置。实验报道的荧光激发的主要特征再现氦簇的光谱。通过AIP发布发布。

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