Huang Jiahao, Qin Xizhou, Zhong Honghua, Ke Yongguan, Lee Chaohong
School of Physics and Astronomy, Sun Yat-Sen University, Guangzhou 510275, China.
State Key Laboratory of Optoelectronic Materials and Technologies, Sun Yat-Sen University, Guangzhou 510275, China.
Sci Rep. 2015 Dec 9;5:17894. doi: 10.1038/srep17894.
Quantum metrology aims to yield higher measurement precisions via quantum techniques such as entanglement. It is of great importance for both fundamental sciences and practical technologies, from testing equivalence principle to designing high-precision atomic clocks. However, due to environment effects, highly entangled states become fragile and the achieved precisions may even be worse than the standard quantum limit (SQL). Here we present a high-precision measurement scheme via spin cat states (a kind of non-Gaussian entangled states in superposition of two quasi-orthogonal spin coherent states) under dissipation. In comparison to maximally entangled states, spin cat states with modest entanglement are more robust against losses and their achievable precisions may still beat the SQL. Even if the detector is imperfect, the achieved precisions of the parity measurement are higher than the ones of the population measurement. Our scheme provides a realizable way to achieve high-precision measurements via dissipative quantum systems of Bose atoms.
量子计量学旨在通过诸如纠缠等量子技术实现更高的测量精度。它对于基础科学和实际技术都非常重要,从测试等效原理到设计高精度原子钟。然而,由于环境影响,高度纠缠态变得脆弱,所实现的精度甚至可能比标准量子极限(SQL)更差。在这里,我们提出了一种在耗散情况下通过自旋猫态(一种由两个准正交自旋相干态叠加而成的非高斯纠缠态)进行高精度测量的方案。与最大纠缠态相比,具有适度纠缠的自旋猫态对损耗更具鲁棒性,并且它们可实现的精度仍可能超过SQL。即使探测器不完善,奇偶性测量所实现的精度也高于粒子数测量的精度。我们的方案提供了一种通过玻色原子的耗散量子系统实现高精度测量的可行方法。