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Backward Cherenkov radiation emitted by polariton solitons in a microcavity wire

机译:在微腔线中由极化孤子发射的向后Cherenkov辐射

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摘要

Exciton-polaritons in semiconductor microcavities form a highly nonlinear platform to study a variety of effects interfacing optical, condensed matter, quantum and statistical physics. We show that the complex polariton patterns generated by picosecond pulses in microcavity wire waveguides can be understood as the Cherenkov radiation emitted by bright polariton solitons, which is enabled by the unique microcavity polariton dispersion, which has momentum intervals with positive and negative group velocities. Unlike in optical fibres and semiconductor waveguides, we observe that the microcavity wire Cherenkov radiation is predominantly emitted with negative group velocity and therefore propagates backwards relative to the propagation direction of the emitting soliton. We have developed a theory of the microcavity wire polariton solitons and of their Cherenkov radiation and conducted a series of experiments, where we have measured polariton-soliton pulse compression, pulse breaking and emission of the backward Cherenkov radiation.
机译:半导体微腔中的激子极化子形成一个高度非线性的平台,用于研究介乎光学,凝聚态,量子和统计物理学的各种效应。我们表明,微腔线波导中皮秒脉冲产生的复杂极化子图案可以理解为明亮极化子孤子发射的Cherenkov辐射,这是由独特的微腔极化子弥散实现的,其具有动量间隔为正负速度。与光纤和半导体波导不同,我们观察到微腔线切伦科夫辐射主要以负的群速度发射,因此相对于发射孤子的传播方向向后传播。我们已经开发了微腔线极化子孤子及其Cherenkov辐射的理论,并进行了一系列实验,其中我们测量了极化子-孤子脉冲压缩,脉冲破裂和反向Cherenkov辐射的发射。

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