首页> 外文期刊>Journal of chemical theory and computation: JCTC >Improving the Accuracy of Excited-State Simulations of BODIPY and Aza-BODIPY Dyes with a Joint SOS-CIS(D) and TD-DFT Approach
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Improving the Accuracy of Excited-State Simulations of BODIPY and Aza-BODIPY Dyes with a Joint SOS-CIS(D) and TD-DFT Approach

机译:使用SOS-CIS(D)和TD-DFT联合方法提高BODIPY和Aza-BODIPY染料的激发态模拟的准确性

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摘要

BODIPY and aza-BODIPY dyes constitute two key families of organic dyes with applications in both materials science and biology. Previous attempts aiming to obtain accurate theoretical estimates of their optical properties, and in particular of their 0-0 energies, have failed. Here, using time-dependent density functional theory (TD-DFT), configuration interaction singles with a double correction [CIS(D)], and its scaled-opposite-spin variant [SOS-CIS(D)], we have determined the 0-0 energies as well as the vibronic shapes of both the absorption and emission bands of a large set of fluoroborates. Indeed, we have selected 47 BODIPY and 4 aza-BODIPY dyes presenting diverse chemical structures. TD-DFT yields a rather large mean signed error between the experimental and theoretical 0-0 energies with a systematic overshooting of the transition energies (by ca. 0.4 eV). This error is reduced to ca. 0.2 [0.1] eV when the TD-DFT 0-0 energies are corrected with vertical CIS(D) [SOS-CIS(D)] energies. For BODIPY and aza-BODIPY dyes, both CIS(D) and SOS-CIS(D) clearly outperform TD-DFT. The present computational protocol allows accurate data to be obtained for the most relevant properties, that is, 0-0 energies and optical band shapes.
机译:BODIPY和aza-BODIPY染料是有机染料的两个关键家族,它们在材料科学和生物学中都有应用。先前旨在获得其光学特性,特别是其0-0能量的准确理论估计的尝试失败了。在这里,我们使用时变密度泛函理论(TD-DFT),具有双校正[CIS(D)]的配置相互作用单项及其按比例缩放的自旋变体[SOS-CIS(D)]确定了大量氟硼酸盐的0-0能量以及吸收带和发射带的振动波形状。实际上,我们已经选择了47种具有不同化学结构的BODIPY和4种aza-BODIPY染料。 TD-DFT在实验能量和理论0-0能量之间产生相当大的平均有符号误差,并且过渡能量有系统的过冲(大约0.4 eV)。将该误差减小至约。用垂直CIS(D)[SOS-CIS(D)]能量校正TD-DFT 0-0能量时为0.2 [0.1] eV。对于BODIPY和aza-BODIPY染料,CIS(D)和SOS-CIS(D)均明显优于TD-DFT。本计算协议允许针对最相关的属性(即0-0能量和光学波段形状)获得准确的数据。

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