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强耦合单量子点-腔系统的量子特性

Quantum nature of a strongly coupled single quantum dot-cavity system.

作者信息

Hennessy K, Badolato A, Winger M, Gerace D, Atatüre M, Gulde S, Fält S, Hu E L, Imamoğlu A

机构信息

Institute of Quantum Electronics, ETH Zürich, HPT G10, 8093 Zurich, Switzerland.

出版信息

Nature. 2007 Feb 22;445(7130):896-9. doi: 10.1038/nature05586. Epub 2007 Jan 28.

Abstract

Cavity quantum electrodynamics (QED) studies the interaction between a quantum emitter and a single radiation-field mode. When an atom is strongly coupled to a cavity mode, it is possible to realize important quantum information processing tasks, such as controlled coherent coupling and entanglement of distinguishable quantum systems. Realizing these tasks in the solid state is clearly desirable, and coupling semiconductor self-assembled quantum dots to monolithic optical cavities is a promising route to this end. However, validating the efficacy of quantum dots in quantum information applications requires confirmation of the quantum nature of the quantum-dot-cavity system in the strong-coupling regime. Here we find such confirmation by observing quantum correlations in photoluminescence from a photonic crystal nanocavity interacting with one, and only one, quantum dot located precisely at the cavity electric field maximum. When off-resonance, photon emission from the cavity mode and quantum-dot excitons is anticorrelated at the level of single quanta, proving that the mode is driven solely by the quantum dot despite an energy mismatch between cavity and excitons. When tuned to resonance, the exciton and cavity enter the strong-coupling regime of cavity QED and the quantum-dot exciton lifetime reduces by a factor of 145. The generated photon stream becomes antibunched, proving that the strongly coupled exciton/photon system is in the quantum regime. Our observations unequivocally show that quantum information tasks are achievable in solid-state cavity QED.

摘要

腔量子电动力学(QED)研究量子发射体与单个辐射场模式之间的相互作用。当一个原子与一个腔模式强耦合时,就有可能实现重要的量子信息处理任务,比如可区分量子系统的受控相干耦合和纠缠。显然,在固态中实现这些任务是很有必要的,而将半导体自组装量子点与单片光学腔耦合是实现这一目标的一条很有前景的途径。然而,要验证量子点在量子信息应用中的有效性,就需要确认量子点 - 腔系统在强耦合 regime 下的量子特性。在这里,我们通过观察与恰好位于腔电场最大值处的一个且仅一个量子点相互作用的光子晶体纳米腔的光致发光中的量子关联来找到这样的确认。当处于非共振状态时,腔模式和量子点激子的光子发射在单量子水平上是反相关的,这证明尽管腔和激子之间存在能量失配,但该模式仅由量子点驱动。当调谐到共振状态时,激子和腔进入腔QED的强耦合 regime,量子点激子寿命缩短了145倍。所产生的光子流变得反聚束,证明强耦合激子/光子系统处于量子 regime。我们的观察结果明确表明,在固态腔QED中可以实现量子信息任务。

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