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首页> 外文期刊>Physical chemistry chemical physics: PCCP >Lowest excited states and optical absorption spectra of donor-acceptor copolymers for organic photovoltaics: a new picture emerging from tuned long-range corrected density functionals
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Lowest excited states and optical absorption spectra of donor-acceptor copolymers for organic photovoltaics: a new picture emerging from tuned long-range corrected density functionals

机译:用于有机光伏的供体-受体共聚物的最低激发态和光吸收光谱:调谐的远程校正密度函数产生的新图像

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摘要

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.
机译:具有低光学间隙的聚合物对有机光伏社区至关重要,因为它们具有利用大部分太阳能光谱的潜力。沿其富电子和电子不足片段的主链的结合有助于低位激发态的存在,预计该低态激发态将显示出显着的电荷转移特性。尽管已知常规混合功能在时间依赖的DFT级别上不能为电荷转移激发提供令人满意的结果,但据报道,远程校正(LRC)功能在许多系统中提供了改进的描述。在这里,我们使用此类LRC功能,同时考虑了调谐参数和默认范围分离参数,来表征目标低光学间隙系统的吸收光谱。我们的结果表明,经过调整的LRC功能可导致模拟的光吸收特性,与实验数据吻合良好。重要的是,最低的激发态(激子)显示出比最初预期的更加局限的性质。

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