Barbatti Mario, Crespo-Otero Rachel
Max-Planck-Institut für Kohlenforschung, Kaiser-Wilhelm-Platz 1, 45470, Mülheim an der Ruhr, Germany,
Top Curr Chem. 2016;368:415-44. doi: 10.1007/128_2014_605.
Nonadiabatic dynamics simulation of electronically-excited states has been a research area of fundamental importance, providing support for spectroscopy, explaining photoinduced processes, and predicting new phenomena in a variety of specialties, from basic physical-chemistry, through molecular biology, to materials engineering. The demands in the field, however, are quickly growing, and the development of surface hopping based on density functional theory (SH/DFT) has been a major advance in the field. In this contribution, the surface hopping approach, the methods for computation of excited states based on DFT, the connection between these methodologies, and their diverse implementations are reviewed. The shortcomings of the methods are critically addressed and a number of case studies from diverse fields are surveyed.
电子激发态的非绝热动力学模拟一直是一个具有根本重要性的研究领域,为光谱学提供支持,解释光诱导过程,并预测从基础物理化学、分子生物学到材料工程等各种专业领域中的新现象。然而,该领域的需求正在迅速增长,基于密度泛函理论的表面跳跃方法(SH/DFT)的发展是该领域的一项重大进展。在本论文中,将对表面跳跃方法、基于密度泛函理论的激发态计算方法、这些方法之间的联系及其不同实现方式进行综述。将批判性地讨论这些方法的缺点,并对来自不同领域的一些案例研究进行调查。