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Probing vibrationally mediated ultrafast excited-state reaction dynamics with multireference (CASPT2) trajectories

机译:用多参考(CASPT2)轨迹探测振动介导的超快激发态反应动力学

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摘要

Excited-state trajectories computed at the complete active space second-order perturbation theory (CASPT2) reveal how vibrational excitation controls the molecular approach to the intersection space that drives the photodissociation of a prototypical halogenated methyl radical, namely CF _2I. Translating the Franck-Condon structure along the ground-state CASPT2 vibrational modes in this system followed by propagating the displaced structures in the first excited doublet state simulates specific vibrational excitations and vibrationally mediated dynamics, respectively. Three distinct situations are encountered: the trajectories (i) converge to an energetically flat segment of the intersection space, (ii) locate a segment of the intersection space, and (iii) access a region where the intersection space degeneracy is lifted to form a ridge of avoided crossings. The computational protocol documented herein can be used as a tool to design control strategies based on selective excitation of vibrational modes, including adaptive feedback schemes using coherent light sources.
机译:在完整的活性空间二阶扰动理论(CASPT2)上计算出的激发态轨迹揭示了振动激发如何控制分子分子对相交空间的驱动,该相交空间驱动原型卤代甲基自由基,即CF _2I的光解离。在该系统中,沿基态CASPT2振动模式平移Franck-Condon结构,然后在第一激发双峰态中传播位移结构,分别模拟了特定的振动激发和振动介导的动力学。遇到三种不同的情况:轨迹(i)收敛到相交空间的能量平坦段,(ii)定位相交空间的一段,(iii)进入一个区域,在该区域中,相交空间的简并性被提升以形成一个避免穿越的山脊。本文记录的计算协议可以用作基于振动模式的选择性激励设计控制策略的工具,包括使用相干光源的自适应反馈方案。

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