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Quantum Nuclear Dynamics Pumped and Probed by Ultrafast Polarization Controlled Steering of a Coherent Electronic State in LiH

机译:LiH中相干电子态的超快偏振控制转向泵浦和探测的量子核动力学

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摘要

The quantum wave packet dynamics following a coherent electronic excitation of LiH by an ultrashort, polarized, strong one cycle infrared optical pulse is computed on several electronic states using a grid method. The coupling to the strong field of the pump and the probe pulses is included in the Hamiltonian used to solve the time-dependent Schrodinger equation. The polarization of the pump pulse allows us to control the localization in time and in space of the nonequilibrium coherent electronic motion and the subsequent nuclear dynamics. We show that transient absorption, resulting from the interaction of the total molecular dipole with the electric fields of the pump and the probe, is a very versatile probe of the different time scales of the vibronic dynamics. It allows probing both the ultrashort, femtosecond time scale of the electronic coherences as well as the longer dozens of femtoseconds time scales of the nuclear motion on the excited electronic states. The ultrafast beatings of the electronic coherences in space and in time are shown to be modulated by the different periods of the nuclear motion.
机译:使用网格方法在几种电子状态下计算了由超短,极化,强一周期红外光脉冲对LiH进行相干电子激发后的量子波包动力学。哈密​​顿量包括与泵的强场和探测脉冲的耦合,用于解决与时间有关的薛定inger方程。泵浦脉冲的极化使我们能够控制非平衡相干电子运动和随后的核动力学的时间和空间定位。我们表明,由总分子偶极子与泵和探针的电场相互作用产生的瞬态吸收是一种在不同时间尺度上的振动动力学的非常通用的探针。它既可以探测电子相干的超短飞秒时间尺度,也可以探测受激电子态上核运动的数十飞秒时间尺度。显示了在空间和时间上电子相干的超快跳动是由核运动的不同周期调制的。

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