Quantum metrology with a continuous-variable system.

IF 20.7
Matteo Fadel, Noah Roux, Manuel Gessner
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引用次数: 0

Abstract

As one of the main pillars of quantum technologies, quantum metrology aims to improve measurement precision using techniques from quantum information. The two main strategies to achieve this are the preparation of nonclassical states and the design of optimized measurement observables. We discuss precision limits and optimal strategies in quantum metrology and sensing with a single mode of quantum continuous variables. We focus on the practically most relevant cases of estimating displacements and rotations and provide the sensitivities of the most important classes of states that includes Gaussian states and superpositions of Fock states or coherent states. Fundamental precision limits that are obtained from the quantum Fisher information are compared to the precision of a simple moment-based estimation strategy based on the data obtained from possibly sub-optimal measurement observables, including homodyne, photon number, parity and higher moments. Finally, we summarize some of the main experimental achievements and present emerging platforms for continuous-variable sensing. These results are of particular interest for experiments with quantum light, trapped ions, mechanical oscillators, and microwave resonators.

连续变量系统的量子计量。
量子计量是量子技术的主要支柱之一,旨在利用量子信息技术提高测量精度。实现这一目标的两个主要策略是制备非经典态和设计优化的测量可观测值。讨论了单模量子连续变量在量子计量和传感中的精度极限和最优策略。我们专注于估计位移和旋转的实际最相关的情况,并提供最重要的状态类别的灵敏度,包括高斯状态和叠加的Fock状态或相干状态。从量子Fisher信息中获得的基本精度限制与基于可能次优测量观测数据(包括同差、光子数、宇称和更高的矩)获得的简单矩估计策略的精度进行了比较。最后,我们总结了一些主要的实验成果和新兴的连续变量传感平台。这些结果对量子光、捕获离子、机械振荡器和微波谐振器的实验特别感兴趣。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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