Phase-insensitive amplifier gain estimation at Cramér-Rao bound for two-mode squeezed state of light

Author:

Wang Hailong1,Chen Zehua,Fu Zhongxing,Shi Yunpeng,Zhang Xiong,Zhao ChunliuORCID,Jin Shangzhong,Jing Jietai1234

Affiliation:

1. East China Normal University

2. CAS Center for Excellence in Ultra-Intense Laser Science

3. Nanjing University

4. Shanxi University

Abstract

Phase-insensitive amplifiers (PIAs), as a class of important quantum devices, have found significant applications in the subtle manipulation of multiple quantum correlation and multipartite quantum entanglement. Gain is a very important parameter for quantifying the performance of a PIA. Its absolute value can be defined as the ratio of the output light beam power to the input light beam power, while its estimation precision has not been extensively investigated yet. Therefore, in this work, we theoretically study the estimation precision from the vacuum two-mode squeezed state (TMSS), the estimation precision of the coherent state, and the bright TMSS scenario, which has the following two advantages: it has more probe photons than the vacuum TMSS and higher estimation precision than the coherent state. The advantage in terms of estimation precision of the bright TMSS compared with the coherent state is researched. We first simulate the effect of noise from another PIA with gain M on the estimation precision of the bright TMSS, and we find that a scheme in which the PIA is placed in the auxiliary light beam path is more robust than two other schemes. Then, a fictitious beam splitter with transmission T is used to simulate the noise effects of propagation loss and imperfect detection, and the results show that a scheme in which the fictitious beam splitter is placed before the original PIA in the probe light beam path is the most robust. Finally, optimal intensity difference measurement is confirmed to be an accessible experimental technique to saturate estimation precision of the bright TMSS. Therefore, our present study opens a new avenue for quantum metrology based on PIAs.

Funder

Natural Science Foundation of Zhejiang Province

the Fundamental Research Funds for the Provincial Universities of Zhejiang

National Natural Science Foundation of China

Science and Technology Commission of Shanghai Municipality

Program of Shanghai Academic Research Leader

the Basic Research Project of the Shanghai Science and Technology Commission

Natural Science Foundation of Shanghai

Minhang Leading Talents

Shanghai Municipal Education Commission

111 Project

Publisher

Optica Publishing Group

Subject

Atomic and Molecular Physics, and Optics

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