噪声中尺度量子时代的量子计量

Lin Jiao, Wei Wu, Si-Yuan Bai, Jun-Hong An
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引用次数: 0

摘要

量子计量学通过利用量子特征(如纠缠和压缩)作为资源,追求对物理量的更高精度测量的物理实现,而不是经典可实现的极限。它在开发下一代频率标准、磁力计、雷达和导航方面具有潜在的应用。然而,量子世界中普遍存在的退相干性降低了量子资源,迫使精度回到甚至低于经典极限,这被称为噪声量子计量学的不去定理,极大地阻碍了其应用。因此,如何在现实的噪声环境中实现量子计量的预期性能是近年来备受关注的问题。综述了量子计量的原理、分类和应用。特别关注了不同的量子资源,可以带来量子优势,提高灵敏度。然后,介绍了噪声量子计量的不去定理及其在各种噪声诱导退相干情况下的主动控制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Quantum Metrology in the Noisy Intermediate-Scale Quantum Era

Quantum Metrology in the Noisy Intermediate-Scale Quantum Era
Quantum metrology pursues the physical realization of higher-precision measurements to physical quantities than the classically achievable limit by exploiting quantum features, such as entanglement and squeezing, as resources. It has potential applications in developing next-generation frequency standards, magnetometers, radar, and navigation. However, the ubiquitous decoherence in the quantum world degrades the quantum resources and forces the precision back to or even worse than the classical limit, which is called the no-go theorem of noisy quantum metrology and greatly hinders its applications. Therefore, how to realize the promised performance of quantum metrology in realistic noisy situations attracts much attention in recent years. The principle, categories, and applications of quantum metrology are reviewed. Special attention is paid to different quantum resources that can bring quantum superiority in enhancing sensitivity. Then, the no-go theorem of noisy quantum metrology and its active control under different kinds of noise-induced decoherence situations are introduced.
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