Charry Martinez Jorge Alfonso, Barborini Matteo, Tkatchenko Alexandre
Department of Physics and Materials Science, University of Luxembourg, L-1511, Luxembourg City, Luxembourg.
J Chem Theory Comput. 2022 Apr 12;18(4):2267-2280. doi: 10.1021/acs.jctc.1c01193. Epub 2022 Mar 25.
The positron, as the antiparticle of the electron, can form metastable states with atoms and molecules before its annihilation with an electron. Such metastable matter-positron complexes are stabilized by a variety of mechanisms, which can have both covalent and noncovalent character. Specifically, electron-positron binding often involves strong many-body correlation effects, posing a substantial challenge for quantum-chemical methods based on atomic orbitals. Here we propose an accurate, efficient, and transferable variational ansatz based on a combination of electron-positron geminal orbitals and a Jastrow factor that explicitly includes the electron-positron correlations in the field of the nuclei, which are optimized at the level of variational Monte Carlo (VMC). We apply this approach in combination with diffusion Monte Carlo (DMC) to calculate binding energies for a positron and a positronium Ps (the pseudoatomic electron-positron pair), bound to a set of atomic systems (H, Li, Li, Li, Be, Be, B, C, O and F). For PsB, PsC, PsO, and PsF, our VMC and DMC total energies are lower than that from previous calculations; hence, we redefine the state of the art for these systems. To assess our approach for molecules, we study the potential-energy surfaces (PES) of two hydrogen anions H mediated by a positron (H), for which we calculate accurate spectroscopic properties by using a dense interpolation of the PES. We demonstrate the reliability and transferability of our correlated wave functions for electron-positron interactions with respect to state-of-the-art calculations reported in the literature.
正电子作为电子的反粒子,在与电子湮灭之前,能与原子和分子形成亚稳态。这种亚稳态的物质 - 正电子复合物通过多种机制得以稳定,这些机制兼具共价和非共价特性。具体而言,电子 - 正电子结合常常涉及强烈的多体关联效应,这给基于原子轨道的量子化学方法带来了巨大挑战。在此,我们提出一种精确、高效且可转移的变分假设,它基于电子 - 正电子双电子轨道与贾斯脱因子的组合,该因子明确包含了原子核场中的电子 - 正电子关联,并在变分蒙特卡罗(VMC)水平上进行了优化。我们将此方法与扩散蒙特卡罗(DMC)相结合,来计算与一组原子体系(H、Li、Li、Li、Be、Be、B、C、O和F)结合的一个正电子和一个正电子素Ps(准原子电子 - 正电子对)的结合能。对于PsB、PsC、PsO和PsF,我们的VMC和DMC总能量低于先前计算的值;因此,我们重新定义了这些体系的当前技术水平。为了评估我们针对分子的方法,我们研究了由一个正电子介导的两个氢负离子H的势能面(PES),为此我们通过对PES进行密集插值来计算精确的光谱性质。我们证明了我们用于电子 - 正电子相互作用的相关波函数相对于文献中报道的当前技术水平计算的可靠性和可转移性。