Detection of persistent current correlation in cavity-QED

被引:0
|
作者
Bulka, Bogdan R. [1 ]
机构
[1] Polish Acad Sci, Inst Mol Phys, Ul Mariana Smoluchowskiego 17, PL-60179 Poznan, Poland
关键词
Persistent current; Current fluctuations; Noise power spectrum; Circuit QED; Radiative response; Quantum interference; Quantum dots;
D O I
10.1016/j.jmmm.2023.171356
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We simulated the radiative response of a cavity quantum electrodynamics (QED) inductively coupled to the ring pierced by magnetic flux and analyzed its spectral dependence to get insight into persistent current dynamics. Current fluctuations in the ring induce changes in the microwave resonator: shifting the resonant frequency and changing its damping. We use the linear response theory and calculate the current response function by means of the Green function technique. Our model contains two quantum dots which divide the ring into two arms with different electron transfers. There are two opposite (symmetric and asymmetric) components of the persistent current, which interplay can be observed the response functions. The resonator reflectance shows characteristic shifts in the dispersive regime and avoided crossings at the resonance points. The magnitude of the resonator frequency shift is greater for coupling to the arm with higher transparency. Fluctuations of the symmetric component of the persistent current are relevant for a wide range of the Aharonov-Bohm phase phi, while the asymmetric component becomes dominant close to phi approximate to pi (when the total persistent current changes its orientation).
引用
收藏
页数:4
相关论文
共 50 条
  • [31] Geometric phase assisted observation of noninertial cavity-QED effects
    Arya, Navdeep
    Mittal, Vikash
    Lochan, Kinjalk
    Goyal, Sandeep K.
    PHYSICAL REVIEW D, 2022, 106 (04)
  • [32] Quantum trajectories and quantum control: Theory and cavity-QED experiment
    Wiseman, HM
    Warszawski, P
    Reiner, J
    Smith, WP
    Orozco, L
    Kuhr, S
    QUANTUM COMMUNICATION, MEASUREMENT AND COMPUTING, PROCEEDINGS, 2003, : 321 - 324
  • [33] Generation of Different Classes of Multipartite Entanglement Using Cavity-QED
    Ziane, Mustapha
    El Guerbouz, Rachid
    Siyouri, Fatima-Zahra
    El Baz, Morad
    COMMUNICATIONS IN THEORETICAL PHYSICS, 2018, 69 (02) : 131 - 136
  • [34] Quantum origin of anomalous Floquet phases in cavity-QED materials
    Perez-Gonzalez, Beatriz
    Platero, Gloria
    Gomez-Leon, Alvaro
    COMMUNICATIONS PHYSICS, 2024, 7 (01):
  • [35] Indirect driving of a cavity-QED system and its induced nonlinearity
    Turek, Yusuf
    Yang, L. P.
    Maimaiti, W.
    Li, Yong
    Sun, C. P.
    PHYSICAL REVIEW A, 2014, 90 (01):
  • [36] Hardware-efficient fermionic simulation with a cavity-QED system
    Zhu, Guanyu
    Subasi, Yigit
    Whitfield, James D.
    Hafezi, Mohammad
    NPJ QUANTUM INFORMATION, 2018, 4
  • [37] Laser stabilization using saturated absorption in a cavity-QED system
    Tieri, D. A.
    Cooper, J.
    Christensen, Bjarke T. R.
    Thomsen, J. W.
    Holland, M. J.
    PHYSICAL REVIEW A, 2015, 92 (01):
  • [38] Emergence of chaos and controlled photon transfer in a cavity-QED network
    Dey, Amit
    Kulkarni, Manas
    PHYSICAL REVIEW RESEARCH, 2020, 2 (04):
  • [39] Probing quantum nonlinearity of cavity-QED systems with quantum light
    Hu, C. Y.
    Yang, F. H.
    PHYSICAL REVIEW B, 2021, 104 (18)
  • [40] Spectrum of the Cavity-QED Micro laser: Quantum Frequency Pulling
    An, Kyungwon
    2012 14TH INTERNATIONAL CONFERENCE ON TRANSPARENT OPTICAL NETWORKS (ICTON 2012), 2012,