首页> 外文期刊>Journal of chemical theory and computation: JCTC >Optimum Exchange for Calculation of Excitation Energies and Hyperpolarizabilities of Organic Electro-optic Chromophores
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Optimum Exchange for Calculation of Excitation Energies and Hyperpolarizabilities of Organic Electro-optic Chromophores

机译:最佳交换,用于计算有机电发色团的激发能和超极化率

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Organic electro-optic (OEO) materials integrated into silicon—organic hybrid devices afford significant improvements in size, weight, power, and bandwidth performance of integrated electronic/photonic systems critical for current and next generation telecommunication, computer, sensor, transportation, and defense technologies. Improvement in molecular first hyperpolarizability (β), and in turn electro-optic activity, is crucial to optimizing device performance, Common hybrid density functional theory (DFT) methods, while attractive due to their computational scaling, often perform poorly for optical properties in systems with substantial intramolecular charge-transfer character, such as OEO chromophores. This study evaluates the utility of the long-range corrected (LC) DFT methods for computation of the molecular second-order nonlinear optical response. We compare calculated results for a 14-molecule benchmark set of OEO chromophores with the corresponding experimentally measured β and one-photon absorption energy, γ_(max). We analyze the distance dependence of the fraction of exact exchange in LC-DFT methods for accurately computing these properties for OEO chromophores. We also examine systematic tuning of the range-separation parameter to enforce Koopmans'/ionization potential theorem. This tuning method improves prediction of excitation energies but is not reliable for predicting the hyperpolarizabilities of larger chromophores since the tuning parameter value can be too small, leading to instabilities in the computation of β_(hrs)-Additionally, we find that the size dependence of the optimal tuning parameter for the ionization potential has the opposite size dependence of optimal tuning parameter for best agreement with the experimental λ_(max), suggesting the tuning for the ionization potential is unreliable for extended conjugated systems.
机译:集成到硅有机混合设备中的有机光电(OEO)材料在尺寸,重量,功率和带宽性能方面提供了显着的改进,这些集成的电子/光子系统对于当前和下一代电信,计算机,传感器,运输和国防至关重要技术。分子优先超极化性(β)的提高以及电光活性的提高对于优化器件性能至关重要。常见的混合密度泛函理论(DFT)方法由于其计算规模大而引人注目,但对于系统的光学性能而言通常表现不佳具有实质的分子内电荷转移特性,例如OEO发色团。这项研究评估了远程校正(LC)DFT方法在计算分子二阶非线性光学响应中的实用性。我们将14分子基准的OEO发色团与相应的实验测得的β和单光子吸收能γ_(max)的计算结果进行比较。我们分析了LC-DFT方法中精确交换分数的距离依赖性,以精确计算OEO发色团的这些性质。我们还研究了对距离分离参数的系统调整,以强制执行Koopmans /电离势定理。这种调整方法可以改善对激发能的预测,但是对于调整较大发色团的超极化性并不可靠,因为调整参数值可能太小,导致β_(hrs)的计算不稳定。此外,我们发现,电离势的最佳调谐参数与实验λ_(max)的最佳一致性具有与最佳调谐参数相反的尺寸依赖性,这表明电离势的调谐对于扩展的共轭体系而言是不可靠的。

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