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Electronic decoherence and nonadiabatic chemical dynamics in betaine dye molecules.

机译:甜菜碱染料分子中的电子退相干和非绝热化学动力学。

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摘要

The effect of electronic decoherence on nonadiabatic (NA) transition rate is investigated with nuclear overlap/phase function (NOPF) and mixed quantum/classical molecular dynamics (MQC-MD) simulations are performed to obtain the NA transition rate on betaine dye molecules. First of all, spin-boson model with ohmic spectral density is used to explore electronic decoherence. We obtain a decoherence function by comparing two solutions for the canonical NOPF based on quantum mechanical and mixed quantum/classical methods, respectively. We provide an electronic decoherence time under short time and high temperature limits. Secondly, electronic decoherence only induced by intramolecular vibrational motions is studied with the NOPF in the simplest betaine molecule, pyridinium-N-phenoxide betaine [4-(1-pyridinio)phenolate]. Decoherence times from several approximations are obtained, including the role of frequency shifts and Duschinsky rotation. We find that the low frequency torsional motion does not make any significant contribution to the decay of the NOPF. Frequency shifts have more effect on the decay of the NOPF, than Duschinsky rotation does, but the simplest spin-boson model alone describes coherence decay quite well. At longer times, we observe an exponential decay modulated by phase recurrence, but the contribution of the exponential decay to the relaxation is small. Calculated ultrafast decoherence time scales from intramolecular vibrational motions indicate that nuclear motions in solute can have more influence on the total electronic decoherence than does solvent. Thirdly, Frank-Condon (FC) density function in the simplest betaine molecule is calculated, combining the sum-over-states method and the time-dependent method. The FC density function for harmonic vibrational modes is computed by a modified three level-fixed binary tree algorithm including the role of frequency shifts and Duschinsky rotation. For the torsional mode, FC density is computed with the time-dependent method. We find that frequency shifts affect FC density function more than Duschinsky rotation does. The lack of a strong exponential decay in the high frequency region of the FC density function implies that the vibrational motions in the simplest betaine fall onto the strong coupling limit. Finally, Nuclear NA coupling matrix elements by intramolecular vibrational motions are analytically calculated with the spin-boson model. Limitations and applications of the calculation are discussed.
机译:利用核重叠/相函数(NOPF)研究了电子去相干对非绝热(NA)跃迁速率的影响,并进行了混合量子/经典分子动力学(MQC-MD)模拟以获得甜菜碱染料分子的NA跃迁速率。首先,使用具有欧姆光谱密度的自旋玻色子模型来探索电子退相干。通过分别比较基于量子力学和混合量子/经典方法的经典NOPF的两个解,我们获得了一个退相干函数。我们在短时间和高温限制下提供电子消相干时间。其次,用最简单的甜菜碱分子,吡啶鎓-N-酚盐甜菜碱[4-(1-吡啶基)苯酚盐]中的NOPF研究了仅由分子内振动运动引起的电子去相干。从几个近似值获得了退相干时间,包括频移和Duschinsky旋转的作用。我们发现低频扭转运动对NOPF的衰减没有任何重大贡献。频移对NOPF衰减的影响大于Duschinsky旋转,但仅最简单的自旋玻色子模型就很好地描述了相干衰减。在更长的时间,我们观察到由相位重复调制的指数衰减,但是指数衰减对弛豫的贡献很小。根据分子内振动运动计算的超快退相干时间尺度表明,溶质中的核运动比溶剂对总电子退相干的影响更大。第三,结合状态求和法和时间依赖法,计算出最简单甜菜碱分子的Frank-Condon(FC)密度函数。谐波振动模式的FC密度函数是通过修改后的三级固定二叉树算法来计算的,该算法包括频移和Duschinsky旋转的作用。对于扭转模式,使用与时间有关的方法计算FC密度。我们发现,频移比Duschinsky旋转对FC密度函数的影响更大。在FC密度函数的高频区域中没有强烈的指数衰减,这意味着最简单的甜菜碱中的振动运动会落入强耦合极限。最后,利用自旋玻色子模型解析地计算了分子内振动引起的核NA耦合基质元素。讨论了计算的局限性和应用。

著录项

  • 作者

    Hwang, Hyonseok.;

  • 作者单位

    The University of Texas at Austin.;

  • 授予单位 The University of Texas at Austin.;
  • 学科 Chemistry Physical.
  • 学位 Ph.D.
  • 年度 2003
  • 页码 p.6103
  • 总页数 151
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学;
  • 关键词

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