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Modulated phases of graphene quantum Hall polariton fluids

机译:石墨烯量子霍尔极化子流体的调制相

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摘要

There is a growing experimental interest in coupling cavity photons to the cyclotron resonance excitations of electron liquids in high-mobility semiconductor quantum wells or graphene sheets. These media offer unique platforms to carry out fundamental studies of exciton-polariton condensation and cavity quantum electrodynamics in a regime, in which electron–electron interactions are expected to play a pivotal role. Here, focusing on graphene, we present a theoretical study of the impact of electron–electron interactions on a quantum Hall polariton fluid, that is a fluid of magneto-excitons resonantly coupled to cavity photons. We show that electron–electron interactions are responsible for an instability of graphene integer quantum Hall polariton fluids towards a modulated phase. We demonstrate that this phase can be detected by measuring the collective excitation spectra, which is often at a characteristic wave vector of the order of the inverse magnetic length.
机译:在高迁移率半导体量子阱或石墨烯片中,将腔光子耦合到电子液体的回旋共振激发上,引起了越来越多的实验兴趣。这些介质提供了独特的平台,可以在一个机制中进行激子-极化子凝聚和腔量子电动力学的基础研究,在该机制中,电子与电子的相互作用有望发挥关键作用。在这里,我们以石墨烯为重点,对电子-电子相互作用对量子霍尔极化子流体的影响进行了理论研究,量子霍尔极化子流体是与腔光子共振耦合的磁激子流体。我们表明,电子与电子的相互作用是造成石墨烯整数量子霍尔极化子流体向调制相不稳定的原因。我们证明,可以通过测量集体激发光谱来检测该相位,该激发光谱通常处于反磁长量级的特征波矢量处。

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