School of Natural Sciences and Mathematics, Indiana University East, Richmond, Indiana 47374, USA.
Condensed Matter and Statistical Physics Section, The Abdus Salaam International Center for Theoretical Physics, Strada Costiera 11, Trieste 34151, Italy.
J Chem Phys. 2018 Mar 14;148(10):102331. doi: 10.1063/1.5005056.
In this work, we examine the importance of nuclear quantum effects on capturing the line broadening and vibronic structure of optical spectra. We determine the absorption spectra of three aromatic molecules indole, pyridine, and benzene using time dependent density functional theory with several molecular dynamics sampling protocols: force-field based empirical potentials, ab initio simulations, and finally path-integrals for the inclusion of nuclear quantum effects. We show that the absorption spectrum for all these chromophores are similarly broadened in the presence of nuclear quantum effects regardless of the presence of hydrogen bond donor or acceptor groups. We also show that simulations incorporating nuclear quantum effects are able to reproduce the heterogeneous broadening of the absorption spectra even with empirical force fields. The spectral broadening associated with nuclear quantum effects can be accounted for by the broadened distribution of chromophore size as revealed by a particle in the box model. We also highlight the role that nuclear quantum effects have on the underlying electronic structure of aromatic molecules as probed by various electrostatic properties.
在这项工作中,我们研究了核量子效应对捕捉光学光谱的线宽和振子结构的重要性。我们使用几种分子动力学采样方案(基于力场的经验势、从头算模拟以及包含核量子效应的路径积分),通过含时密度泛函理论来确定吲哚、吡啶和苯这三种芳香族分子的吸收光谱。结果表明,无论是否存在氢键供体或受体基团,所有这些发色团的吸收光谱在存在核量子效应的情况下都会同样变宽。我们还表明,即使使用经验力场,包含核量子效应的模拟也能够重现吸收光谱的不均匀展宽。与核量子效应相关的光谱展宽可以用盒子模型中揭示的发色团大小的展宽分布来解释。我们还强调了核量子效应对各种静电性质探测到的芳香族分子的底层电子结构的影响。