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Density matrix formulation of the nuclear-electronic orbital approach with explicit electron-proton correlation

机译:具有显式电子-质子相关性的核电子轨道方法的密度矩阵公式

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摘要

The density matrix formulation of the nuclear-electronic orbital explicitly correlated Hartree-Fock (NEO-XCHF) approach for including electron-proton correlation in mixed nuclear-electronic wave functions is presented. This approach is based on a general ansatz for the nuclear-electronic wave function that includes explicit dependence on the nuclear-electronic distances with Gaussian-type geminal functions. The NEO-XCHF approach is extended to treat multielectron, multiproton systems and to describe a broader class of systems that require a more general form of the wave function, such as open-shell and multireference wave functions. General expressions are derived for the one-particle and two-particle densities, as well as the total energy. In addition, expressions for the total energy and Fock matrices in an atomic orbital basis are derived for the special case of a closed-shell electronic system. The resulting Hartree-Fock-Roothaan equations can be solved iteratively to self consistency. An advantage of the density matrix representation is that it facilitates the development of approximate NEO-XCHF methods in which specified high-order density terms are neglected to decrease the computational expense. Another advantage of the density matrix representation is that it provides the foundation for the development of electron-proton functionals within the framework of density functional theory, thereby enabling a consistent treatment of both electron-electron and electron-proton correlation in a computationally practical manner.
机译:提出了将电子-质子相关包括在混合核电子波函数中的核电子轨道显式相关Hartree-Fock(NEO-XCHF)方法的密度矩阵公式。该方法基于核电波函数的通用antz,其中包括对具有高斯型双子函数的核电距离的显式依赖。 NEO-XCHF方法已扩展为处理多电子,多质子系统,并描述了需要更通用形式的波函数(例如开壳和多参考波函数)的更广泛的系统类别。导出了单粒子和两粒子密度以及总能量的一般表达式。此外,针对闭壳电子系统的特殊情况,得出了原子轨道基础上的总能量和福克矩阵的表达式。所得的Hartree-Fock-Roothaan方程可以迭代求解,以达到自洽。密度矩阵表示的一个优点是它有助于开发近似NEO-XCHF方法,其中忽略了指定的高阶密度项以减少计算费用。密度矩阵表示法的另一个优点是,它为在密度泛函理论框架内开发电子-质子官能团提供了基础,从而能够以计算上的实际方式对电子-电子和电子-质子相关性进行一致的处理。

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