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首页> 外文期刊>Journal of Physics, B. Atomic, Molecular and Optical Physics: An Institute of Physics Journal >Temporal phase control of bound-bound and bound-free two-photon transitions in NO with two time-delayed cross-polarized pulses
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Temporal phase control of bound-bound and bound-free two-photon transitions in NO with two time-delayed cross-polarized pulses

机译:具有两个时滞交叉极化脉冲的NO中有界和无界双光子跃迁的时间相位控制

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Temporal phase control over the multi-photoionization of NO is investigated experimentally The coherent excitation of the molecular system is achieved by a sequence of two phase-related non-Fourier-transform-limited laser pulses delivered by a nanosecond dye laser, The phase-locked pulses are produced by making use of an actively stabilized interferometer with a tunable pathlength difference. As the coherence time of the laser is comparable with the inhomogenous dephasing time of the medium, the measurements are performed with temporally overlapped pulses. In order to avoid the modulation of the ionic signal coming from optical interference, the linear polarizations of the two pulses are crossed. The quantum modulation of the signal versus the time delay between the two pulses is observed for the three following distinct processes: (a) two-photon resonant four-photon ionization of the ground vibronic state; (b) two-photon absorption of the A-X transition followed by ionization; and (c) two-photon ionization of the electronically excited state A. As a result, temporal phase control over bound-bound and bound-free transitions is demonstrated. The efficiency of the control process is shown to be limited by the presence of uncoupled excitation channels inherent to the method employed. The advantage in using a sequence of cross-polarized pulses for the controlling processes is discussed. [References: 20]
机译:实验研究了NO的多光电离的时相控制分子系统的相干激发是通过由纳秒级染料激光发出的两个相相关的非傅里叶变换限制激光脉冲序列实现的,锁相通过使用具有可调光程差的有源稳定干涉仪来产生脉冲。由于激光的相干时间与介质的不均匀相移时间相当,因此使用时间重叠的脉冲进行测量。为了避免来自光学干扰的离子信号的调制,两个脉冲的线性极化是交叉的。对于以下三个不同的过程,观察到信号的量子调制与两个脉冲之间的时间延迟的关系:(a)基态振动态的双光子共振四光子电离; (b)A-X跃迁的两光子吸收,然后电离;结果,证明了对有界和无界跃迁的时间相位控制。所显示的控制方法的效率受到所采用方法固有的未耦合激发通道的限制。讨论了将一系列交叉极化脉冲用于控制过程的优点。 [参考:20]

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