ExROPPP: Fast, accurate, and spin-pure calculation of the electronically excited states of organic hydrocarbon radicals

James D. Green, Timothy J. H. Hele
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Abstract

Recent years have seen an explosion of interest in organic radicals due to their promise for highly efficient organic light-emitting diodes and molecular qubits. However, accurately and inexpensively computing their electronic structure has been challenging, especially for excited states, due to the spin-contamination problem. Furthermore, while alternacy or “pseudoparity” rules have guided the interpretation and prediction of the excited states of closed-shell hydrocarbons since the 1950s, similar general rules for hydrocarbon radicals have not to our knowledge been found yet. In this article, we present solutions to both of these challenges. First, we combine the extended configuration interaction singles method with Pariser–Parr–Pople (PPP) theory to obtain a method that we call ExROPPP (Extended Restricted Open-shell PPP) theory. We find that ExROPPP computes spin-pure excited states of hydrocarbon radicals with comparable accuracy to experiment as high-level general multi-configurational quasi-degenerate perturbation theory calculations but at a computational cost that is at least two orders of magnitude lower. We then use ExROPPP to derive widely applicable rules for the spectra of alternant hydrocarbon radicals, which are completely consistent with our computed results. These findings pave the way for highly accurate and efficient computation and prediction of the excited states of organic radicals.
ExROPPP:快速、准确、自旋纯计算有机碳氢化合物自由基的电子激发态
近年来,人们对有机自由基的兴趣激增,因为它们有望成为高效有机发光二极管和分子量子比特。然而,由于自旋污染问题,准确而廉价地计算它们的电子结构,尤其是激发态的电子结构,一直是个难题。此外,虽然自 20 世纪 50 年代以来,交替或 "伪极性 "规则一直指导着对闭壳烃激发态的解释和预测,但据我们所知,目前还没有发现类似的烃自由基通用规则。在本文中,我们提出了应对这两个挑战的解决方案。首先,我们将扩展构型相互作用单数法与帕里斯-帕尔-波普尔(Pariser-Parr-Pople,PPP)理论相结合,得到了一种我们称之为 ExROPPP(扩展受限开壳 PPP)理论的方法。我们发现,ExROPPP 计算烃基的自旋纯激发态的精度与实验精度相当,与高级一般多构型准退化扰动理论计算相当,但计算成本至少低两个数量级。然后,我们利用 ExROPPP 推导出广泛适用的交替烃基光谱规则,这些规则与我们的计算结果完全一致。这些发现为高精度、高效率地计算和预测有机自由基的激发态铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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