Rauwolf Nina, Klopper Wim, Holzer Christof
Institute of Physical Chemistry, Karlsruhe Institute of Technology, Kaiserstraße 12, 76131 Karlsruhe, Germany.
Institute of Theoretical Solid State Physics, Karlsruhe Institute of Technology, Kaiserstraße 12, 76131 Karlsruhe, Germany.
J Chem Phys. 2024 Feb 14;160(6). doi: 10.1063/5.0191499.
A route to assess non-linear light-matter interactions from the increasingly popular GW-Bethe-Salpeter equation (GW-BSE) method is outlined. In the present work, the necessary analytic expressions within the static-screened exchange approximation of the BSE are derived. This enables a straightforward implementation of the computation of the first hyperpolarizability as well as two-photon absorption processes for molecular systems. Benchmark calculations on small molecular systems reveal that the GW-BSE method is intriguingly accurate for predicting both first hyperpolarizabilities and two-photon absorption strengths. Using state-of-the-art Kohn-Sham references as a starting point, the accuracy of the GW-BSE method rivals that of the coupled-cluster singles-and-doubles method, outperforming both second-order coupled-cluster and time-dependent density-functional theory.
概述了一种从日益流行的GW-贝塞耳-萨尔皮特方程(GW-BSE)方法评估非线性光-物质相互作用的途径。在本工作中,推导了BSE静态屏蔽交换近似内的必要解析表达式。这使得能够直接实现分子体系的第一超极化率以及双光子吸收过程的计算。对小分子体系的基准计算表明,GW-BSE方法在预测第一超极化率和双光子吸收强度方面出奇地准确。以最先进的Kohn-Sham参考为起点,GW-BSE方法的精度可与耦合簇单双激发方法相媲美,优于二阶耦合簇方法和含时密度泛函理论。