Tsuneda Takao, Singh Raman K, Nakata Ayako
Fuel Cell Nanomaterials Center, University of Yamanashi, Kofu, 400-0021, Japan.
First-principles Simulation Group, Nano-Theory Field, International Center for Materials Nanoarchitectonics (WPI-MANA), National Institute for Materials Science (NIMS), Tsukuba, 305-0044, Japan.
J Comput Chem. 2017 Sep 5;38(23):2020-2029. doi: 10.1002/jcc.24846. Epub 2017 Jun 5.
Low-lying excited states of planarly extended nanographenes are investigated using the long-range corrected (LC) density functional theory (DFT) and the spin-flip (SF) time-dependent density functional theory (TDDFT) by exploring the long-range exchange and double-excitation correlation effects on the excitation energies, band gaps, and exciton binding energies. Optimizing the geometries of the nanographenes indicates that the long-range exchange interaction significantly improves the CC bond lengths and amplify their bond length alternations with overall shortening the bond lengths. The calculated TDDFT excitation energies show that long-range exchange interaction is crucial to provide accurate excitation energies of small nanographenes and dominate the exciton binding energies in the excited states of nanographenes. It is, however, also found that the present long-range correction may cause the overestimation of the excitation energy for the infinitely wide graphene due to the discrepancy between the calculated band gaps and vertical ionization potential (IP) minus electron affinity (EA) values. Contrasting to the long-range exchange effects, the SF-TDDFT calculations show that the double-excitation correlation effects are negligible in the low-lying excitations of nanographenes, although this effect is large in the lowest excitation of benzene molecule. It is, therefore, concluded that long-range exchange interactions should be incorporated in TDDFT calculations to quantitatively investigate the excited states of graphenes, although TDDFT using a present LC functional may provide a considerable excitation energy for the infinitely wide graphene mainly due to the discrepancy between the calculated band gaps and IP-EA values. © 2017 Wiley Periodicals, Inc.
通过探索长程交换和双激发相关效应,利用长程校正(LC)密度泛函理论(DFT)和自旋翻转(SF)含时密度泛函理论(TDDFT)研究了平面扩展纳米石墨烯的低激发态,这些效应涉及激发能、带隙和激子结合能。对纳米石墨烯的几何结构进行优化表明,长程交换相互作用显著改善了CC键长,并在整体缩短键长的同时增大了键长交替。计算得到的TDDFT激发能表明,长程交换相互作用对于提供小纳米石墨烯的准确激发能至关重要,并且在纳米石墨烯的激发态中主导激子结合能。然而,还发现由于计算的带隙与垂直电离势(IP)减去电子亲和势(EA)值之间存在差异,当前的长程校正可能会导致对无限宽石墨烯激发能的高估。与长程交换效应相反,SF - TDDFT计算表明,双激发相关效应在纳米石墨烯的低激发中可忽略不计,尽管这种效应在苯分子的最低激发中很大。因此得出结论,在TDDFT计算中应纳入长程交换相互作用以定量研究石墨烯的激发态,尽管使用当前LC泛函的TDDFT可能会为无限宽石墨烯提供可观的激发能,这主要是由于计算的带隙与IP - EA值之间存在差异。© 2017威利期刊公司