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Polaritonic molecular clock for all-optical ultrafast imaging of wavepacket dynamics without probe pulses

机译:无探针动力学的全光超速成像的偏光分子时钟,无探针脉冲

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Conventional approaches to probing ultrafast molecular dynamics rely on the use of synchronized laser pulses with a well-defined time delay. Typically, a pump pulse excites a molecular wavepacket. A subsequent probe pulse can then dissociate or ionize the molecule, and measurement of the molecular fragments provides information about where the wavepacket was for each time delay. Here, we propose to exploit the ultrafast nuclear-position-dependent emission obtained due to large light–matter coupling in plasmonic nanocavities to image wavepacket dynamics using only a single pump pulse. We show that the time-resolved emission from the cavity provides information about when the wavepacket passes a given region in nuclear configuration space. This approach can image both cavity-modified dynamics on polaritonic (hybrid light–matter) potentials in the strong light–matter coupling regime and bare-molecule dynamics in the intermediate coupling regime of large Purcell enhancements, and provides a route towards ultrafast molecular spectroscopy with plasmonic nanocavities.
机译:探测超快分子动力学的常规方法依赖于使用具有明确定义的时间延迟的同步激光脉冲的使用。通常,泵脉冲激发分子波皮。然后,随后的探针脉冲可以解离或电离分子,并且分子片段的测量提供了关于每次延迟的波波皮的位置。在这里,我们建议利用由于单个泵脉冲在等离子体纳米覆盖物中的大型浅型耦合而获得的超快核位置依赖性排放。我们表明,当波波皮在核配置空间中通过给定区域时,腔中的时间分辨发射提供了关于当核配置空间中的给定区域的信息。这种方法可以在大型斑块增强中的中间耦合状态下的强光耦合状态和裸声动力学中的偏光性(混合灯具)电位上的侧腔修改动力学,并提供了朝向超快分子光谱的途径等离子体纳米覆盖。

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