Tyagi Ritaj, Voora Vamsee K
Department of Chemical Sciences, Tata Institute of Fundamental Research, Homi Bhabha Road, Colaba, Mumbai 400005, India.
J Phys Chem Lett. 2024 Feb 8;15(5):1218-1226. doi: 10.1021/acs.jpclett.3c03392. Epub 2024 Jan 26.
We propose a single-parameter effective one-particle potential, termed the single-pole exchange-correlation (1p-XC), to rapidly evaluate electron affinities (EAs) of nonvalence electronic states of molecular clusters and nanoassemblies. The model combines exact-exchange and the random phase approximation (RPA) correlation potential with a single-pole approximation to model the frequency-dependent polarization function. It captures long-range static and dynamic-frequency effects in the correlation potential, with mean absolute errors of 0.06 eV for EAs of hydrated- and ammoniated-electron clusters with EA values in the range 0.24-1.77 eV. The 1p-XC approximation enables EA estimation with a computational wall-time similar to that of hybrid functionals. The model also provides a compressed-basis, which significantly reduces the rank of higher-level parameter-free one-particle Hamiltonians and further simplifies the computation of EAs. The compressed-basis approach is used to model the hybridization of superatomic molecular states of (C) and (C), thereby verifying previous model Hamiltonian studies.
我们提出了一种单参数有效单粒子势,称为单极交换关联(1p-XC),用于快速评估分子簇和纳米组装体非价电子态的电子亲和能(EA)。该模型将精确交换和随机相位近似(RPA)关联势与单极近似相结合,以模拟频率相关的极化函数。它捕捉了关联势中的长程静态和动态频率效应,对于水合电子簇和氨化电子簇的EA,其平均绝对误差为0.06 eV,EA值范围为0.24 - 1.77 eV。1p-XC近似能够以与杂化泛函相似的计算时间来估计EA。该模型还提供了一个压缩基,这显著降低了高级无参数单粒子哈密顿量的秩,并进一步简化了EA的计算。压缩基方法用于模拟(C)和(C)的超原子分子态的杂化,从而验证了先前的模型哈密顿量研究。