首页> 外文期刊>The Journal of Chemical Physics >Analysis and prediction of absorption band shapes,fluorescence band shapes,resonance Raman intensities,and excitation profiles using the time-dependent theory of electronic spectroscopy
【24h】

Analysis and prediction of absorption band shapes,fluorescence band shapes,resonance Raman intensities,and excitation profiles using the time-dependent theory of electronic spectroscopy

机译:使用时变电子光谱学原理分析和预测吸收带形状,荧光带形状,共振拉曼强度和激发曲线

获取原文
获取原文并翻译 | 示例
       

摘要

A general method for the simulation of absorption (ABS) and fluorescence band shapes,resonance-Raman (rR) spectra,and excitation profiles based on the time-dependent theory of Heller is discussed.The following improvements to Heller's theory have been made:(a) derivation of new recurrence relations for the time-dependent wave packet overlap in the case of frequency changes between the ground and electronically excited states,(b) a new series expansion that gives insight into the nature of Savin's preresonance approximation,(c) incorporation of inhomogeneous broadening effects into the formalism at no additional computational cost,and (d) derivation of a new and simple short-time dynamics based equation for the Stokes shift that remains valid in the case of partially resolved vibrational structure.Our implementation of the time-dependent theory for the fitting of experimental spectra and the simulation of model spectra as well as the quantum mechanical calculation of the model parameters is discussed.The implementation covers all electronic structure approaches which are able to deliver ground-and excited-state energies and transition dipole moments.The technique becomes highly efficient if analytic gradients for the excited-state surface are available.In this case,the computational cost for the simultaneous prediction of ABS,fluorescence,and rR spectra is equal to that of a single excited-state geometry optimization step while the limitations of the short-time dynamics approximation are completely avoided.As a test case we discuss the well-known case of the strongly allowed 1 ~1A_g ->1 ~1B_u.transition in 1,3,5 trans-hexatriene in detail using method ranging from simple single-reference treatments to elaborate multireference electronic structure approaches.At the highest computational level,the computed spectra show the best agreement that has so far been obtained with quantum chemical methods for this problem.
机译:讨论了基于Heller的时变理论模拟吸收(ABS)和荧光带形状,共振拉曼(rR)光谱和激发曲线的通用方法。对Heller的理论进行了以下改进: a)在基态和电子激发态之间的频率变化的情况下,针对随时间变化的波包重叠推导新的递归关系;(b)通过新的级数展开,深入了解Savin的共振前近似的性质,(c)在不增加计算成本的情况下将不均匀的扩展效应纳入形式主义中,以及(d)推导基于Stokes位移的新的简单短时动力学方程,该方程在部分解析振动结构的情况下仍然有效。时变理论,用于拟合实验光谱和模拟模型光谱,以及模型参数的量子力学计算该实现涵盖了所有能够传递基态和激发态能量以及跃迁偶极矩的电子结构方法。如果可以得到激发态表面的解析梯度,则该技术将变得非常高效。同时预测ABS,荧光和rR光谱的计算成本等于单个激发态几何优化步骤的计算成本,同时完全避免了短时动力学近似的局限性。作为测试案例,我们讨论了从简单的单参考处理到复杂的多参考电子结构方法,详细介绍了在1,3,5反己六烯中强烈允许的1〜1A_g-> 1〜1B_u。跃迁的已知情况。在最高计算水平下,计算出的光谱显示了迄今为止用量子化学方法获得的最佳解决方案。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号