Kossoski Fábris, Barbatti Mario
Aix-Marseille Univ, CNRS Marseille France
Chem Sci. 2020 Sep 7;11(36):9827-9835. doi: 10.1039/d0sc04197a.
Despite the continuous development of theoretical methodologies for describing nonadiabatic dynamics of molecular systems, there is a lack of approaches for processes where the norm of the wave function is not conserved, , when an imaginary potential accounts for some irreversible decaying mechanism. Current approaches rely on building potential energy surfaces of reduced dimensionality, which is not optimal for more involving and realistic multidimensional problems. Here, we present a novel methodology for describing the dynamics of complex-valued molecular Hamiltonians, which is a generalisation of the trajectory surface hopping method. As a first application, the complex surface fewest switches surface hopping (CS-FSSH) method was employed to survey the relaxation mechanisms of the shape resonant anions of iodoethene. We have provided the first detailed and dynamical picture of the π*/σ* mechanism of dissociative electron attachment in halogenated unsaturated compounds, which is believed to underlie electron-induced reactions of several molecules of interest. Electron capture into the π* orbital promotes C[double bond, length as m-dash]C stretching and out-of-plane vibrations, followed by charge transfer from the double bond into the σ* orbital at the C-I bond, and, finally, release of the iodine ion, all within only 15 fs. On-the-fly dynamics simulations of a vast class of processes can be envisioned with the CS-FSSH methodology, including autoionisation from transient anions, core-ionised and superexcited states, Auger and interatomic coulombic decay, and time-dependent luminescence.
尽管用于描述分子体系非绝热动力学的理论方法不断发展,但对于波函数范数不守恒的过程,例如当虚势描述某些不可逆衰减机制时,仍缺乏相应的方法。目前的方法依赖于构建降维势能面,这对于更复杂和现实的多维问题并非最优选择。在此,我们提出一种描述复值分子哈密顿量动力学的新方法,它是轨迹表面跳跃方法的推广。作为首次应用,复表面最少开关表面跳跃(CS-FSSH)方法被用于研究碘乙烯形状共振阴离子的弛豫机制。我们提供了卤代不饱和化合物中解离电子附着的π*/σ机制的首张详细动态图景,据信这是若干感兴趣分子的电子诱导反应的基础。电子俘获到π轨道促进C═C键的拉伸和平面外振动,随后电荷从双键转移到C-I键的σ*轨道,最后在仅15飞秒内释放碘离子。借助CS-FSSH方法可以设想对大量过程进行实时动力学模拟,包括瞬态阴离子的自电离、芯电离和超激发态、俄歇和原子间库仑衰变以及时间相关的发光。