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Quantum Discord Determines the Interferometric Power of Quantum States

机译:量子不和谐决定了量子态的干涉功率

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Quantum metrology exploits quantum mechanical laws to improve the precision in estimating technologically relevant parameters such as phase, frequency, or magnetic fields. Probe states are usually tailored to the particular dynamics whose parameters are being estimated. Here we consider a novel framework where quantum estimation is performed in an interferometric configuration, using bipartite probe states prepared when only the spectrum of the generating Hamiltonian is known. We introduce a figure of merit for the scheme, given by the worst-case precision over all suitable Hamiltonians, and prove that it amounts exactly to a computable measure of discord-type quantum correlations for the input probe. We complement our theoretical results with a metrology experiment, realized in a highly controllable room-temperature nuclear magnetic resonance setup, which provides a proof-of-concept demonstration for the usefulness of discord in sensing applications. Discordant probes are shown to guarantee a nonzero phase sensitivity for all the chosen generating Hamiltonians, while classically correlated probes are unable to accomplish the estimation in a worst-case setting. This work establishes a rigorous and direct operational interpretation for general quantum correlations, shedding light on their potential for quantum technology.
机译:量子计量学利用量子力学定律来提高估算技术相关参数(例如相位,频率或磁场)的精度。探头状态通常针对其参数正在估计的特定动态量身定制。在这里,我们考虑一种新颖的框架,其中在干涉配置中使用仅当生成哈密顿量的光谱已知时准备的二分探针状态进行量子估计。我们介绍了该方案的优值,它由所有合适的哈密顿量的最坏情况下的精度给出,并证明它完全等于输入探针的不和谐型量子相关性的可计算量度。我们通过在高度可控的室温核磁共振装置中实现的计量学实验对理论结果进行了补充,该实验提供了概念证明,证明了不和谐在传感应用中的有用性。示出了不协调的探针以确保所有选择的生成哈密顿量的非零相位灵敏度,而经典相关的探针无法在最坏情况下完成估计。这项工作为一般的量子相关性建立了严格而直接的操作解释,从而揭示了它们在量子技术中的潜力。

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