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环境诱导的几何量子关联双突相变的观测。

Observation of environment-induced double sudden transitions in geometric quantum correlations.

机构信息

Instituto de Física, Universidade Federal Fluminense, Avenida General Milton Tavares de Souza s/n, Gragoatá, 24210-346 Niterói, Rio de Janeiro, Brazil.

Instituto de Física de São Carlos, Universidade de São Paulo, Caixa Postal 369, 13560-970 São Carlos, São Paulo, Brazil.

出版信息

Phys Rev Lett. 2013 Dec 20;111(25):250401. doi: 10.1103/PhysRevLett.111.250401. Epub 2013 Dec 18.

Abstract

Correlations in quantum systems exhibit a rich phenomenology under the effect of various sources of noise. We investigate theoretically and experimentally the dynamics of quantum correlations and their classical counterparts in two nuclear magnetic resonance setups, as measured by geometric quantifiers based on trace norm. We consider two-qubit systems prepared in Bell diagonal states, and perform the experiments in real decohering environments resulting from Markovian local noise which preserves the Bell diagonal form of the states. We then report the first observation of environment-induced double sudden transitions in the geometric quantum correlations, a genuinely nonclassical effect not observable in classical correlations. The evolution of classical correlations in our physical implementation reveals in turn the finite-time relaxation to a pointer basis under nondissipative decoherence, which we characterize geometrically in full analogy with predictions based on entropic measures.

摘要

在各种噪声源的影响下,量子系统中的相关性表现出丰富的现象。我们通过基于迹范数的几何量子量,在两个核磁共振装置中从理论和实验上研究了量子相关性及其经典对应物的动力学。我们考虑了由局部噪声产生的马科夫量子退相干环境中制备的双qubit 贝尔对角态,该噪声保持了量子态的贝尔对角形式。然后,我们首次观察到了在几何量子相关性中环境诱导的双突发跃迁,这是一种在经典相关性中无法观察到的真正非经典效应。在我们的物理实现中,经典相关性的演化反过来揭示了在非耗散退相干下有限时间弛豫到指针基,我们从几何上完全类似于基于熵测度的预测来描述这一过程。

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