Quantum metrology enhanced by coherence-induced driving in a cavity-QED setup

被引:9
|
作者
Cheng, Weijun [1 ,2 ]
Hou, S. C. [1 ,2 ,3 ]
Wang, Zhihai [1 ,2 ,4 ,5 ]
Yi, X. X. [1 ,2 ,4 ,5 ]
机构
[1] Northeast Normal Univ, Ctr Quantum Sci, Changchun 130024, Jilin, Peoples R China
[2] Northeast Normal Univ, Sch Phys, Changchun 130024, Jilin, Peoples R China
[3] Dalian Maritime Univ, Dept Phys, Dalian 116026, Peoples R China
[4] Northeast Normal Univ, Ctr Adv Optoelect Funct Mat Res, Changchun 130024, Jilin, Peoples R China
[5] Northeast Normal Univ, Key Lab UV Emitting Mat & Technol, Minist Educ, Changchun 130024, Jilin, Peoples R China
基金
中国博士后科学基金; 中国国家自然科学基金;
关键词
NOISE LIMITS; ATOM-LASER; ENTANGLEMENT; STATE; QUBIT;
D O I
10.1103/PhysRevA.100.053825
中图分类号
O43 [光学];
学科分类号
070207 ; 0803 ;
摘要
We propose a quantum metrology scheme in a cavity QED setup to achieve the Heisenberg limit. In our scheme, a series of identical two-level atoms randomly pass through and interact with a dissipative single-mode cavity. Different from the entanglement-based Heisenberg limit metrology scheme, we do not need to prepare the atomic entangled states before they enter into the cavity. We show that the initial atomic coherence will induce an effective driving to the cavity field, whose steady state is an incoherent superposition of orthogonal states, with the superposition probabilities being dependent on the atom-cavity coupling strength. By measuring the average photon number of the cavity in the steady state, we demonstrate that the root mean square of the fluctuation of the atom-cavity coupling strength is proportional to 1/N-c(2)(N-c is the effective atom number interacting with the photon in the cavity during its lifetime). It implies that we have achieved the Heisenberg limit in our quantum metrology process. We also discuss the experimental feasibility of our theoretical proposal. Our findings may find potential applications in quantum metrology technology.
引用
收藏
页数:7
相关论文
共 50 条
  • [1] Quantum thermometry based on a cavity-QED setup
    Xie, Dong
    Sun, Feng-Xiao
    Xu, Chunling
    [J]. PHYSICAL REVIEW A, 2020, 101 (06)
  • [2] Quantum thermometry based on a cavity-QED setup
    Xie, Dong
    Sun, Feng-Xiao
    Xu, Chunling
    [J]. Physical Review A, 2020, 101 (06):
  • [3] Indirect driving of a cavity-QED system and its induced nonlinearity
    Turek, Yusuf
    Yang, L. P.
    Maimaiti, W.
    Li, Yong
    Sun, C. P.
    [J]. PHYSICAL REVIEW A, 2014, 90 (01):
  • [4] Quantum Information Processing in Cavity-QED
    S. J. van Enk
    H. J. Kimble
    H. Mabuchi
    [J]. Quantum Information Processing, 2004, 3 : 75 - 90
  • [5] Quantum Information Processing in Cavity-QED
    van Enk, S. J.
    Kimble, H. J.
    Mabuchi, H.
    [J]. QUANTUM INFORMATION PROCESSING, 2004, 3 (1-5) : 75 - 90
  • [6] Environment induced entanglement in cavity-QED
    N. Nayak
    Biplab Ghosh
    A. S. Majumdar
    [J]. Indian Journal of Physics, 2010, 84 : 1039 - 1050
  • [7] Environment induced entanglement in cavity-QED
    Nayak, N.
    Ghosh, Biplab
    Majumdar, A. S.
    [J]. INDIAN JOURNAL OF PHYSICS, 2010, 84 (08) : 1039 - 1050
  • [8] Implementation of a three-qubit quantum error-correction code in a cavity-QED setup
    Ottaviani, Carlo
    Vitali, David
    [J]. PHYSICAL REVIEW A, 2010, 82 (01):
  • [9] Extended linear regime of cavity-QED enhanced optical circular birefringence induced by a charged quantum dot
    Hu, C. Y.
    Rarity, J. G.
    [J]. PHYSICAL REVIEW B, 2015, 91 (07)
  • [10] Coherence-induced quantum forces
    Elsayed, Tarek A.
    [J]. PHYSICA B-CONDENSED MATTER, 2023, 650