School of Chemistry & Biochemistry, Georgia Institute of Technology, Atlanta, 30332-0400, USA.
Phys Chem Chem Phys. 2012 Nov 7;14(41):14243-8. doi: 10.1039/c2cp41724c.
Polymers with low optical gaps are of importance to the organic photovoltaics community due to their potential for harnessing a large portion of the solar energy spectrum. The combination along their backbones of electron-rich and electron-deficient fragments contributes to the presence of low-lying excited states that are expected to display significant charge-transfer character. While conventional hybrid functionals are known to provide unsatisfactory results for charge-transfer excitations at the time-dependent DFT level, long-range corrected (LRC) functionals have been reported to give improved descriptions in a number of systems. Here, we use such LRC functionals, considering both tuned and default range-separation parameters, to characterize the absorption spectra of low-optical-gap systems of interest. Our results indicate that tuned LRC functionals lead to simulated optical-absorption properties in good agreement with experimental data. Importantly, the lowest-lying excited states (excitons) are shown to present a much more localized nature than initially anticipated.
低光学带隙聚合物对有机光伏社区很重要,因为它们有可能利用太阳能光谱的很大一部分。在它们的骨架上结合富电子和缺电子片段有助于存在低能激发态,预计这些激发态将显示出显著的电荷转移特性。虽然众所周知,传统的混合泛函在含时密度泛函理论水平上对电荷转移激发提供了不理想的结果,但已经报道了长程校正(LRC)泛函在许多系统中提供了改进的描述。在这里,我们使用这种 LRC 泛函,同时考虑调谐和默认的范围分离参数,来描述低光学带隙系统的吸收光谱。我们的结果表明,调谐 LRC 泛函导致模拟的光吸收特性与实验数据非常吻合。重要的是,最初预期的最低能激发态(激子)呈现出比预期更局部的性质。