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Quantum Interference Induced Photon Blockade in a Coupled Single Quantum Dot-Cavity System

机译:耦合单量子点腔系统中的量子干涉诱导光子阻断。

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摘要

We propose an experimental scheme to implement a strong photon blockade with a single quantum dot coupled to a nanocavity. The photon blockade effect can be tremendously enhanced by driving the cavity and the quantum dot simultaneously with two classical laser fields. This enhancement of photon blockade is ascribed to the quantum interference effect to avoid two-photon excitation of the cavity field. Comparing with Jaynes-Cummings model, the second-order correlation function at zero time delay g(2)(0) in our scheme can be reduced by two orders of magnitude and the system sustains a large intracavity photon number. A red (blue) cavity-light detuning asymmetry for photon quantum statistics with bunching or antibunching characteristics is also observed. The photon blockade effect has a controllable flexibility by tuning the relative phase between the two pumping laser fields and the Rabi coupling strength between the quantum dot and the pumping field. Moreover, the photon blockade scheme based on quantum interference mechanism does not require a strong coupling strength between the cavity and the quantum dot, even with the pure dephasing of the system. This simple proposal provides an effective way for potential applications in solid state quantum computation and quantum information processing.
机译:我们提出了一个实验方案,用一个量子点耦合到纳米腔来实现强光子阻挡。通过同时使用两个经典激光场驱动空腔和量子点,可以极大地增强光子阻挡效果。光子阻挡的这种增强归因于量子干涉效应,以避免腔场的双光子激发。与Jaynes-Cummings模型相比,我们方案中零时延g (2)(0)的二阶相关函数可以减少两个数量级,并且系统维持一个大的腔内光子数。还观察到具有聚束或反聚束特性的用于光子量子统计的红色(蓝色)空腔光失谐不对称性。通过调节两个泵浦激光场之间的相对相位以及量子点与泵浦场之间的拉比耦合强度,光子阻挡效应具有可控的灵活性。而且,基于量子干涉机制的光子阻挡方案即使在系统纯移相的情况下也不需要腔与量子点之间的强耦合强度。这个简单的建议为固态量子计算和量子信息处理中的潜在应用提供了一种有效的方法。

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