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Dynamics of entanglement of two electron spins interacting with nuclear spin baths in quantum dots

机译:量子点中两个电子自旋与核自旋浴相互作用的纠缠动力学

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We study the dynamics of entanglement of two electron spins in two quantum dots, in which each electron is interacting with its nuclear spin environment. Focusing on the case of uncoupled dots, and starting from either Bell or Werner states of two qubits, we calculate the decay of entanglement due to the hyperfine interaction with the nuclei. We mostly focus on the regime of magnetic fields in which the bath-induced electron spin flips play a role, for example, their presence leads to the appearance of entanglement sudden death at finite time for two qubits initialized in a Bell state. For these fields, the intrabath dipolar interactions and spatial inhomogeneity of hyperfine couplings are irrelevant on the time scale of coherence (and entanglement) decay, and most of the presented calculations are performed using the uniform-coupling approximation to the exact hyperfine Hamiltonian. We provide a comprehensive overview of entanglement decay in this regime, considering both free evolution of the qubits, and an echo protocol with simultaneous application of π pulses to the two spins. All the currently relevant for experiments bath states are considered: the thermal state, narrowed states (characterized by diminished uncertainty of one of the components of the Overhauser field) of two uncorrelated baths, and a correlated narrowed state with a well-defined value of the z component of the Overhauser field interdot gradient. While we mostly use concurrence to quantify the amount of entanglement in a mixed state of the two electron spins, we also show that their entanglement dynamics can be reconstructed from measurements of the currently relevant for experiments entanglement witnesses and the fidelity of quantum teleportation, performed using a partially disentangled state as a resource.
机译:我们研究了两个量子点中两个电子自旋的纠缠动力学,其中每个电子都与其核自旋环境相互作用。着眼于未耦合点的情况,并从两个量子位的Bell或Werner状态开始,我们计算了由于与原子核的超精细相互作用而引起的纠缠衰减。我们主要关注磁场,其中浴感应的电子自旋翻转在其中起作用,例如,它们的存在会导致在有限时间初始化为贝尔状态的两个量子位导致纠缠突然死亡。对于这些领域,浴内偶极相互作用和超精细耦合的空间不均匀性与相干(和纠缠)衰减的时间尺度无关,并且大多数提出的计算都是使用对精确的超精细哈密顿量的均匀耦合近似进行的。考虑到量子位的自由演化以及同时向两个自旋同时施加π脉冲的回波协议,我们提供了在这种情况下纠缠衰减的全面概述。考虑了当前与实验浴池状态相关的所有条件:热状态,两个不相关浴池的变窄状态(以Overhauser场分量之一的不确定性减小为特征),以及一个相关的变窄状态,具有明确定义的浴池状态Overhauser场点渐变的z分量。虽然我们通常使用并发来量化两个电子自旋混合状态下的纠缠量,但我们也表明,可以从当前与实验有关的纠缠目击者的测量结果和量子隐形传态的保真度来重建它们的纠缠动力学。部分解开的状态作为资源。

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