论文标题

量子探测超出纯dephasing

Quantum probing beyond pure dephasing

论文作者

Tamascelli, Dario, Benedetti, Claudia, Breuer, Heinz-Peter, Paris, Matteo G. A.

论文摘要

量子探测是利用与复杂环境相互作用的简单量子系统的技术,以提取有关某些环境参数的精确信息,例如环境的温度或其光谱密度。在这里,我们分析了单量探针在表征热平衡处的欧姆玻体环境时的性能。特别是,我们分析了调整探针与环境之间的相互作用的效果,超出了纯dephasing的传统范式。在弱耦合和短期制度中,我们分析探测的动力学,而数值模拟是在强耦合和长期制度中使用的。然后,我们评估量子渔民信息以估计截止频率和环境温度。我们的结果提供了明确的证据表明,除非我们将注意力集中在短时间内,否则纯粹的去态不是最佳的。特别是,我们发现了几个工作状态,其中横向相互作用的存在提高了最大可达到的精度,即增加了量子渔民信息。我们还探讨了探针的初始状态和探针特征频率在确定估计精度中的作用,从而提供了定量指南来设计优化检测,以表征量子级别的波索克人环境。

Quantum probing is the art of exploiting simple quantum systems interacting with a complex environment to extract precise information about some environmental parameters, e.g. the temperature of the environment or its spectral density. Here we analyze the performance of a single-qubit probe in characterizing Ohmic bosonic environments at thermal equilibrium. In particular, we analyze the effects of tuning the interaction Hamiltonian between the probe and the environment, going beyond the traditional paradigm of pure dephasing. In the weak-coupling and short-time regime, we address the dynamics of the probe analytically, whereas numerical simulations are employed in the strong coupling and long-time regime. We then evaluate the quantum Fisher information for the estimation of the cutoff frequency and the temperature of the environment. Our results provide clear evidence that pure dephasing is not optimal, unless we focus attention to short times. In particular, we found several working regimes where the presence of a transverse interaction improves the maximum attainable precision, i.e. it increases the quantum Fisher information. We also explore the role of the initial state of the probe and of the probe characteristic frequency in determining the estimation precision, thus providing quantitative guidelines to design optimized detection to characterize bosonic environments at the quantum level.

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