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Cavity quantum-electrodynamical polaritonically enhanced electron-phonon coupling and its influence on superconductivity

机译:腔量子电动力学极化增强电子-声子耦合及其对超导性的影响

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So far, laser control of solids has been mainly discussed in the context of strong classical nonlinear light-matter coupling in a pump-probe framework. Here, we propose a quantum-electrodynamical setting to address the coupling of a low-dimensional quantum material to quantized electromagnetic fields in quantum cavities. Using a protoypical model system describing FeSe/SrTiO3 with electron-phonon long-range forward scattering, we study how the formation of phonon polaritons at the two-dimensional interface of the material modifies effective couplings and superconducting properties in a Migdal-Eliashberg simulation. We find that through highly polarizable dipolar phonons, large cavity-enhanced electron-phonon couplings are possible, but superconductivity is not enhanced for the forward-scattering pairing mechanism due to the interplay between coupling enhancement and mode softening. Our results demonstrate that quantum cavities enable the engineering of fundamental couplings in solids, paving the way for unprecedented control of material properties.
机译:到目前为止,主要是在泵-探针框架中的强经典非线性光-质耦合的背景下讨论了固体的激光控制。在这里,我们提出了一种量子电动力学设置,以解决低维量子材料与量子腔中量化电磁场的耦合问题。使用描述具有电子声子远距离正向散射的FeSe / SrTiO3的原型模型系统,我们研究了在Migdal-Eliashberg模拟中材料二维界面处声子极化子的形成如何改变有效耦合和超导特性。我们发现通过高度极化的偶极声子,大腔增强的电子-声子耦合是可能的,但是由于耦合增强和模式软化之间的相互作用,正向散射配对机制的超导性并未增强。我们的结果表明,量子腔可以实现固体中基本偶联的工程化,为空前控制材料性能铺平了道路。

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