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多组分完全活性空间自洽场理论再探讨:定性准确的质子密度需要大活性空间。

Multicomponent CASSCF Revisited: Large Active Spaces Are Needed for Qualitatively Accurate Protonic Densities.

作者信息

Fajen O Jonathan, Brorsen Kurt R

机构信息

Department of Chemistry, University of Missouri, Columbia, Missouri 65203, United States.

出版信息

J Chem Theory Comput. 2021 Feb 9;17(2):965-974. doi: 10.1021/acs.jctc.0c01191. Epub 2021 Jan 6.

DOI:10.1021/acs.jctc.0c01191
PMID:33404241
Abstract

Multicomponent methods seek to treat select nuclei, typically protons, fully quantum mechanically and equivalent to the electrons of a chemical system. In such methods, it is well-known that due to the neglect of electron-proton correlation, a Hartree-Fock (HF) description of the electron-proton interaction catastrophically fails leading to qualitatively incorrect protonic properties. In single-component quantum chemistry, the qualitative failure of HF is normally indicative of the need for multireference methods such as complete active space self-consistent field (CASSCF). While a multicomponent CASSCF method was implemented nearly 20 years ago, it is only able to perform calculations with very small active spaces (∼10 multicomponent configurations). Therefore, in order to extend the realm of applicability of the multicomponent CASSCF method, this study derives and implements a new two-step multicomponent CASSCF method that uses multicomponent heat-bath configuration interaction for the configuration interaction step, enabling calculations with very large active spaces (up to 16 electrons in 48 orbitals). We find that large electronic active spaces are needed to obtain qualitatively accurate protonic densities for the HCN and FHF molecules. Additionally, the multicomponent CASSCF method implemented here should have further applications for double-well protonic potentials and systems that are inherently electronically multireference.

摘要

多组分方法旨在对选定的原子核(通常是质子)进行完全量子力学处理,且处理方式与化学体系中的电子等效。在这类方法中,众所周知,由于忽略了电子 - 质子相关性,对电子 - 质子相互作用的哈特里 - 福克(HF)描述会灾难性地失败,导致质子性质在定性上出现错误。在单组分量子化学中,HF的定性失败通常表明需要诸如完全活性空间自洽场(CASSCF)之类的多参考方法。虽然多组分CASSCF方法在近20年前就已实现,但它只能在非常小的活性空间(约10个多组分构型)下进行计算。因此,为了扩展多组分CASSCF方法的适用范围,本研究推导并实现了一种新的两步多组分CASSCF方法,该方法在构型相互作用步骤中使用多组分热浴构型相互作用,从而能够在非常大的活性空间(48个轨道中多达16个电子)下进行计算。我们发现,对于HCN和FHF分子,需要大的电子活性空间才能获得定性准确的质子密度。此外,这里实现的多组分CASSCF方法在双阱质子势以及本质上具有电子多参考性的体系中应该会有进一步的应用。

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