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从元素 118 向下的量子学习:为所有原子自动生成费米-劳德林轨道。

Downward quantum learning from element 118: Automated generation of Fermi-Löwdin orbitals for all atoms.

机构信息

Department of Physics, The University of Texas at El Paso, El Paso, Texas 79968, USA.

Department of Physics, Central Michigan University, Mount Pleasant, Michigan 48859, USA.

出版信息

J Chem Phys. 2023 Feb 28;158(8):084101. doi: 10.1063/5.0135089.

DOI:10.1063/5.0135089
PMID:36859080
Abstract

A new algorithm based on a rigorous theorem and quantum data computationally mined from element 118 guarantees automated construction of initial Fermi-Löwdin-Orbital (FLO) starting points for all elements in the Periodic Table. It defines a means for constructing a small library of scalable FLOs for universal use in molecular and solid-state calculations. The method can be systematically improved for greater efficiency and for applications to excited states such as x-ray excitations and optically silent excitations. FLOs were introduced to recast the Perdew-Zunger self-interaction correction (PZSIC) into an explicit unitarily invariant form. The FLOs are generated from a set of N quasi-classical electron positions, referred to as Fermi-Orbital descriptors (FODs), and a set of N-orthonormal single-electron orbitals. FOD positions, when optimized, minimize the PZSIC total energy. However, creating sets of starting FODs that lead to a positive definite Fermi orbital overlap matrix has proven to be challenging for systems composed of open-shell atoms and ions. The proof herein guarantees the existence of a FLOSIC solution and further guarantees that if a solution for N electrons is found, it can be used to generate a minimum of N - 1 and a maximum of 2 - 2 initial starting points for systems composed of a smaller number of electrons. Applications to heavy and super-heavy atoms are presented. All starting solutions reported here were obtained from a solution for element 118, Oganesson.

摘要

一种新的算法基于严格的定理和从 118 号元素挖掘的量子数据,保证了对元素周期表中所有元素的初始费米-洛林轨道(FLO)起始点的自动构建。它定义了一种构建可用于分子和固态计算的通用可扩展 FLO 小库的方法。该方法可以系统地改进,以提高效率,并应用于激发态,如 X 射线激发和光沉默激发。FLO 被引入到重新表述佩尔迪厄-宗格自相互作用修正(PZSIC)为显式幺正不变形式中。FLO 是从一组 N 个准经典电子位置生成的,称为费米轨道描述符(FOD),以及一组 N-正交单电子轨道。当优化 FOD 位置时,PZSIC 总能量最小化。然而,对于由开壳原子和离子组成的系统,创建导致正定费米轨道重叠矩阵的初始 FOD 集已被证明具有挑战性。本文的证明保证了 FLOSIC 解的存在,并进一步保证,如果找到了 N 个电子的解,则可以将其用于生成具有较少电子的系统的至少 N-1 和最多 2-2 个初始起始点。呈现了对重和超重原子的应用。这里报告的所有起始解决方案都是从 118 号元素,Oganesson 的解决方案中获得的。

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