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Development of nuclear basis sets for multicomponent quantum chemistry methods

机译:用于多组分量子化学方法的核基础套装的发展

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The nuclear-electronic orbital (NEO) framework provides a practical approach for directly incorporating nuclear quantum effects and non-Born-Oppenheimer effects of specified nuclei, typically protons, into quantum chemistry calculations. Multicomponent wave function based methods, such as NEO coupled cluster singles and doubles, and multicomponent density functional theory (DFT), such as NEO-DFT, require the appropriate selection of electronic and nuclear basis sets. Although a wide array of electronic basis sets are available, systematically developed nuclear basis sets that balance accuracy and efficiency have been lacking. Herein, a series of nuclear basis sets are developed and shown to be accurate and efficient for describing both ground and excited state properties of multicomponent systems in which electrons and specified protons are treated quantum mechanically. Three series of Gaussian-type nuclear basis sets, denoted PB4, PB5, and PB6, are developed with varying levels of angular momentum. A machine-learning optimization procedure relying on the Gaussian process regression method is utilized to accelerate the optimization process. The basis sets are validated in terms of predictions of ground state energies, proton densities, proton affinities, and proton vibrational excitation energies, allowing the user to select the desired balance between accuracy and efficiency for the properties of interest. These nuclear basis sets will enhance the tractability of NEO methods for applications to a wide range of chemical systems.
机译:核电轨道(NEO)框架提供了一种实用的方法,可直接掺入指定核,通常质子的核量子效应和非出生的对立海胃效应量成量子化学计算。 Multicomponent wave function based methods, such as NEO coupled cluster singles and doubles, and multicomponent density functional theory (DFT), such as NEO-DFT, require the appropriate selection of electronic and nuclear basis sets.虽然有广泛的电子基础套装可用,但系统开发的核基础套装,缺乏平衡准确性和效率。在此,开发了一系列核基础套件并显示为准确且有效地,用于描述多组分系统的地面和激发状态特性,其中电子和指定的质子机械地处理量子。三个系列高斯型核基础套装,表示PB4,PB5和PB6,具有不同程度的角动量。利用依赖于高斯进程回归方法的机器学习优化过程来加速优化过程。基础集是在地面状态能量,质子密度,质子亲和力和质子振动激发能量的预测方面验证的,允许用户在感兴趣的性质之间选择所需的平衡。这些核基础套装将提高Neo方法对各种化学系统的方法的遗传性。

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