论文标题

量子非平衡稳态的纠缠与贝尔非局部性

Entanglement versus Bell nonlocality of quantum nonequilibrium steady states

论文作者

Zhang, Kun, Wang, Jin

论文摘要

我们研究了耦合的两分系统的纠缠和钟形非局部性,其中每个量子位与一个单独的环境耦合。我们研究非平衡环境(具有不同温度或化学势)如何影响纠缠和钟形非局部性。非平衡环境可能会对纠缠和钟形非局部性产生建设性影响。非平衡热力学成本可以维持热能或颗粒电流,并增强纠缠和钟形非局部性。但是,具有最大侵犯铃铛不平等的最大侵犯率的非平衡条件(以温度差异或由熵生产率定量的热力学成本为特征)与产生最大纠缠的非平衡条件不同。当贝尔不等式具有不对称的可观察力(在爱丽丝和鲍勃之间),例如$ i_ {3322} $不等式时,在非平衡环境下的效果也可以反映出不对称性。空间不对称的双Quity系统与非平衡的玻体环境相结合,显示了热整流效应,可以通过钟形非局部性见证。可以在热整流效果中彼此线性取消不同的空间不对称因素,这也反映在纠缠和贝尔非局部性的变化上。我们的研究表明,基于不同最佳的非平衡条件,非平衡环境对于纠缠和贝尔非局部资源都很有价值。

We study the entanglement and the Bell nonlocality of a coupled two-qubit system, in which each qubit is coupled with one individual environment. We study how the nonequilibrium environments (with different temperatures or chemical potentials) influence the entanglement and the Bell nonlocality. The nonequilibrium environments can have constructive effects on the entanglement and the Bell nonlocality. Nonequilibrium thermodynamic cost can sustain the thermal energy or particle current and enhance the entanglement and the Bell nonlocality. However, the nonequilibrium conditions (characterized by the temperature differences or the thermodynamic cost quantified by the entropy production rates) which give the maximal violation of the Bell inequalities are different from the nonequilibrium conditions which give the maximal entanglement. When the Bell inequality has asymmetric observables (between Alice and Bob), for example the $I_{3322}$ inequality, such asymmetry can also be reflected from the effects under the nonequilibrium environments. The spatial asymmetric two-qubit system coupled with nonequilibrium bosonic environments shows the thermal rectification effect, which can be witnessed by the Bell nonlocality. Different spatial asymmetric factors can be linearly cancelled with each other in the thermal rectification effect, which is also reflected on the changes of the entanglement and the Bell nonlocality. Our study demonstrates that the nonequilibrium environments are both valuable for the entanglement and Bell nonlocality resources, based on different optimal nonequilibrium conditions though.

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