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多组分波函数-密度泛函嵌入方法用于正电子素分子。

Multicomponent wavefunction-in-DFT embedding for positronium molecules.

机构信息

Department of Chemistry, Universidad Nacional de Colombia, Av. Cra 30#45-03, Bogotá, Colombia.

出版信息

J Chem Phys. 2023 Apr 7;158(13):134101. doi: 10.1063/5.0139813.

DOI:10.1063/5.0139813
PMID:37031104
Abstract

This work presents an extension of the projector operator embedding scheme of Manby et al. [J. Chem. Theory Comput. 8, 2564 (2012)] in a multicomponent (MC) framework. Here, a molecular system containing electrons and other types of quantum species is divided into a wavefunction (WF) subsystem of interest and a density functional theory (DFT) environment. The WF-in-DFT partition decreases computational costs by partially truncating the WF subsystem basis set at the cost of introducing a controllable embedding error. To explore the applicability of the MC extension, third-order propagator-in-DFT calculations were performed for positron-anion complexes for alkoxides and carboxylates with carbon chains of different sizes. For these systems, it was found that selecting a WF subsystem with the positron and only the oxygen atoms caused an error of 0.1 eV or lower in positron-binding energies, while reducing between 33% and 55% the basis set size. The reduction of computational costs achieved with the embedding scheme allowed us to improve molecular positron-binding energy predictions by performing complete basis set limit extrapolations. Combining the WF-in-DFT embedding and the complete basis set extrapolation, positronium aliphatic alkoxides were predicted to be energetically stable by 0.3 eV with respect to Ps emission. Similarly, positronium carboxylates, both aromatic and aliphatic, were predicted to be stable by 1.3 eV.

摘要

本文扩展了 Manby 等人提出的投影算子嵌入方案[J. Chem. Theory Comput. 8, 2564 (2012)],使其适用于多组分(MC)框架。在这个框架中,一个包含电子和其他类型量子物种的分子系统被分为一个波函数(WF)子系统和一个密度泛函理论(DFT)环境。WF-in-DFT 分区通过部分截断 WF 子系统基组来降低计算成本,代价是引入可控制的嵌入误差。为了探索 MC 扩展的适用性,对具有不同链长的烷氧基和羧酸盐的正电子-阴离子复合物进行了三阶传播子-in-DFT 计算。对于这些系统,发现选择一个包含正电子和仅氧原子的 WF 子系统,会导致正电子结合能的误差在 0.1 eV 或更低,同时将基组大小减少 33%至 55%。嵌入方案降低计算成本,使得我们能够通过执行完全基组极限外推来改进分子正电子结合能的预测。通过将 WF-in-DFT 嵌入和完全基组外推相结合,预测脂肪族烷氧基正电子硅是稳定的,比 Ps 发射稳定 0.3 eV。类似地,预测芳香族和脂肪族的正电子羧酸酯也是稳定的,比 Ps 发射稳定 1.3 eV。

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