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Entanglement transfer from electrons to photons in quantum dots: An open quantum system approach

机译:纠缠从电子转移到量子点中的光子:一种开放的量子系统方法

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摘要

We investigate entanglement transfer from a system of two spin-entangled electron-hole pairs, each placed in a separate single mode cavity, to the photons emitted due to cavity leakage. Dipole selection rules and a splitting between the light hole and the heavy hole subbands are the crucial ingredients establishing a one-to-one correspondence between electron spins and circular photon polarizations. To account for the measurement of the photons as well as dephasing effects, we choose a stochastic Schr?dinger equation and a conditional master equation approach, respectively. The influence of interactions with the environment as well as asymmetries in the coherent couplings on the photon entanglement is analysed for two concrete measurement schemes. The first one is designed to violate the Clauser-Horne-Shimony-Holt (CHSH) inequality, while the second one employs the visibility of interference fringes to prove the entanglement of the photons. Because of the spatial separation of the entangled electronic system over two quantum dots, a successful verification of entangled photons emitted by this system would imply the detection of nonlocal spin entanglement of massive particles in a solid state structure.
机译:我们调查了纠缠从两个自旋纠缠的电子-空穴对的系统转移到每个由于腔体泄漏而发出的光子的纠缠,每个对电子-空穴对放置在单独的单模腔中。偶极子选择规则以及在轻空穴和重空穴子带之间的分裂是在电子自旋和圆形光子极化之间建立一对一对应关系的关键因素。为了说明光子的测量以及相移效应,我们分别选择了随机薛定er方程和条件主方程方法。针对两种具体的测量方案,分析了与环境的相互作用以及相干耦合中的不对称性对光子纠缠的影响。第一个设计用于克服Clauser-Horne-Shimony-Holt(CHSH)不等式,而第二个设计采用干涉条纹的可见性来证明光子的纠缠。由于纠缠电子系统在两个量子点上的空间分离,成功验证由该系统发射的纠缠光子将意味着检测固态结构中大颗粒的非局部自旋纠缠。

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