论文标题

强烈耦合的量子点 - 微腔内系统的四波混合动力学,由多达20个光子驱动

Four-wave mixing dynamics of a strongly coupled quantum-dot--microcavity system driven by up to 20 photons

论文作者

Groll, Daniel, Wigger, Daniel, Jürgens, Kevin, Hahn, Thilo, Schneider, Christian, Kamp, Martin, Höfling, Sven, Kasprzak, Jacek, Kuhn, Tilmann

论文摘要

Jaynes-Cummings(JC)模型代表了单粒子可以与单个光子模式相互作用的最简单方法之一,从而导致了深刻的量子现象,例如光和物质状态的叠加。一个可以用JC模型描述的系统是嵌入微骨腔中的单个量子点。在这项联合实验和理论研究中,我们使用四波混合(FWM)微光谱法研究了这样的系统。特别强调FWM信号对注入微腔的光子数量的依赖性。通过比较彼此非常吻合的仿真和实验,我们推断出多达约20个光子参与观察到的FWM动力学。因此,我们验证了在这种非平凡制度中考虑的系统中JC模型对系统的有效性。我们发现,宿主晶格的量子点激子和纵向声子之间的不可避免的耦合会影响实时FWM动力学,并且必须考虑到对量子点 - 微神经系统的充分描述。在理想化的无耗散状态下进行其他模拟,我们观察到FWM信号表现出准周期动力学,类似于JC模型的崩溃和复兴现象。在这些模拟中,如果将大量光子注入腔内,我们还看到FWM频谱具有三重态结构。

The Jaynes-Cummings (JC) model represents one of the simplest ways in which single qubits can interact with single photon modes, leading to profound quantum phenomena like superpositions of light and matter states. One system, that can be described with the JC model, is a single quantum dot embedded in a micropillar cavity. In this joint experimental and theoretical study we investigate such a system using four-wave mixing (FWM) micro-spectroscopy. Special emphasis is laid on the dependence of the FWM signals on the number of photons injected into the microcavity. By comparing simulation and experiment, which are in excellent agreement with each other, we infer that up to ~20 photons take part in the observed FWM dynamics. Thus we verify the validity of the JC model for the system under consideration in this non-trivial regime. We find that the inevitable coupling between the quantum dot exciton and longitudinal acoustic phonons of the host lattice influences the real time FWM dynamics and has to be taken into account for a sufficient description of the quantum dot-microcavity system. Performing additional simulations in an idealized dissipation-less regime, we observe that the FWM signal exhibits quasi-periodic dynamics, analog to the collapse and revival phenomenon of the JC model. In these simulations we also see that the FWM spectrum has a triplet structure, if a large number of photons is injected into the cavity.

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