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Strongly coupled slow-light polaritons in one-dimensional disordered localized states

机译:一维无序局域态的强耦合慢光极化子

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摘要

Cavity quantum electrodynamics advances the coherent control of a single quantum emitter with a quantized radiation field mode, typically piecewise engineered for the highest finesse and confinement in the cavity field. This enables the possibility of strong coupling for chip-scale quantum processing, but till now is limited to few research groups that can achieve the precision and deterministic requirements for these polariton states. Here we observe for the first time coherent polariton states of strong coupled single quantum dot excitons in inherently disordered one-dimensional localized modes in slow-light photonic crystals. Large vacuum Rabi splittings up to 311 μeV are observed, one of the largest avoided crossings in the solid-state. Our tight-binding models with quantum impurities detail these strong localized polaritons, spanning different disorder strengths, complementary to model-extracted pure dephasing and incoherent pumping rates. Such disorder-induced slow-light polaritons provide a platform towards coherent control, collective interactions, and quantum information processing.
机译:腔量子电动力学以量化的辐射场模式推进了单个量子发射器的相干控制,该模式通常进行分段设计,以实现腔场中的最高精细度和限制。这为芯片级量子处理提供了强耦合的可能性,但到目前为止,仅限于少数几个研究小组能够达到这些极化子态的精度和确定性要求。在这里,我们第一次观察到强耦合单量子点激子在慢光光子晶体中固有无序的一维局部化模式中的相干极化子态。观察到高达311 eeV的大真空Rabi分裂,这是固态中避免的最大交叉之一。我们的带有量子杂质的紧密结合模型详细描述了这些强大的局部极化子,它们跨越了不同的无序强度,与模型提取的纯相移和非相干抽运速率互补。这样的无序诱导的慢光极化子为相干控制,集体相互作用和量子信息处理提供了一个平台。

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