Schäfer Tobias, Gallo Alejandro, Irmler Andreas, Hummel Felix, Grüneis Andreas
Institute for Theoretical Physics, TU Wien, Wiedner Hauptstraße 8-10/136, A-1040 Vienna, Austria.
J Chem Phys. 2021 Dec 28;155(24):244103. doi: 10.1063/5.0074936.
A first-principles study of the adsorption of a single water molecule on a layer of graphitic carbon nitride is reported employing an embedding approach for many-electron correlation methods. To this end, a plane-wave based implementation to obtain intrinsic atomic orbitals and Wannier functions for arbitrary localization potentials is presented. In our embedding scheme, the localized occupied orbitals allow for a separate treatment of short-range and long-range correlation contributions to the adsorption energy by a fragmentation of the simulation cell. In combination with unoccupied natural orbitals, the coupled cluster ansatz with single, double, and perturbative triple particle-hole excitation operators is used to capture the correlation in local fragments centered around the adsorption process. For the long-range correlation, a seamless embedding into the random phase approximation yields rapidly convergent adsorption energies with respect to the local fragment size. Convergence of computed binding energies with respect to the virtual orbital basis set is achieved employing a number of recently developed techniques. Moreover, we discuss fragment size convergence for a range of approximate many-electron perturbation theories. The obtained benchmark results are compared to a number of density functional calculations.
本文报道了采用多电子相关方法的嵌入方法对单个水分子在石墨相氮化碳层上的吸附进行的第一性原理研究。为此,提出了一种基于平面波的实现方法,用于获得任意局域势的本征原子轨道和万尼尔函数。在我们的嵌入方案中,局域占据轨道允许通过模拟单元的分割对吸附能的短程和长程相关贡献进行单独处理。结合未占据的自然轨道,使用具有单、双和微扰三粒子-空穴激发算符的耦合簇近似来捕捉围绕吸附过程的局部片段中的相关性。对于长程相关性,无缝嵌入到随机相位近似中可使吸附能相对于局部片段大小快速收敛。利用一些最近开发的技术实现了计算结合能相对于虚拟轨道基组的收敛。此外,我们讨论了一系列近似多电子微扰理论的片段大小收敛性。将获得的基准结果与一些密度泛函计算结果进行了比较。