论文标题
纠缠量子点中激素旋转进动的符合性鲁棒性
Entanglement robustness to excitonic spin precession in a quantum dot
论文作者
论文摘要
半导体量子点(QD)是一种产生极化输入光子对的有吸引力的资源。我们研究了具有不同激光精细结构分裂(FSS)的QD家族中的激子自旋进动(触发器)及其对从兴奋性 - 基因式辐射级联产生的光子纠缠的影响。我们的结果表明,连贯的过程使QD的纠缠后的时间与有限的FSS不受影响,同时更改系统的特征状态。通过按直线性的巧合的异常振荡,通过量子断层扫描观察到触发器的动力。理论模型是通过包括激子触发器速率的包含的,并与表现出旋转触发器机制的QD上的两光子量子层析成像测量进行了比较。理论模型的概括允许估计纠缠程度随FSS的函数和旋转速率。对于有限的时间分辨率,发现负性相对于FSS和自旋flip速率振荡。这种振荡行为消失了,尽管可以进行触发过程,但仍能检索出最大的时间分辨率和最大的纠缠。
A semiconductor quantum dot (QD) is an attractive resource to generate polarization-entangled photon pairs. We study the excitonic spin precession (flip-flop) in a family of QDs with different excitonic fine-structure splitting (FSS) and its impact on the entanglement of photons generated from the excitonic-biexcitonic radiative cascade. Our results reveal that coherent processes leave the time post-selected entanglement of QDs with finite FSS unaffected while changing the eigenstates of the system. The flip-flop's precession is observed via quantum tomography through anomalous oscillations of the coincidences in the rectilinear basis. A theoretical model is constructed with the inclusion of an excitonic flip-flop rate and is compared with a two-photon quantum tomography measurement on a QD exhibiting the spin flip-flop mechanism. A generalization of the theoretical model allows estimating the degree of entanglement as a function of the FSS and the spin-flip rate. For a finite temporal resolution, the negativity is found to be oscillating with respect to both the FSS and the spin-flip rate. This oscillatory behavior disappears for perfect temporal resolution and maximal entanglement is retrieved despite the flip-flop process.