Enhanced stabilization performances of an open quantum battery in a photonic band-gap environment

被引:0
|
作者
Chen, Yan [1 ]
Tan, Jia [1 ]
Lu, Jincheng [1 ]
Hao, Xiang [1 ]
机构
[1] Suzhou Univ Sci & Technol, Sch Phys Sci & Technol, Suzhou 215009, Peoples R China
基金
中国国家自然科学基金;
关键词
quantum decoherence; quantum work extraction; quantum battery;
D O I
10.1088/1572-9494/ada37b
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
We investigate the stabilization mechanism of open quantum batteries driven by a classical field in the weak or strong system-reservoir coupling regime. A protocol to improve the steady-state energy storage performance is proposed by engineering the spectral density of a band-gap environment which is described as the superposition of two inhomogeneous Lorentzian spectrums with different weights. We find out that the interplay between the battery-environment-bound state and the reservoir memory effect plays a crucial role in the stabilization performance against energy dissipation. The formation of the bound state and the non-Markovian effect will be strengthened by adjusting the weights of the environment spectral density. In the charging process, the classical field contributes to enhancing the steady ergotropy. Moreover, the manipulation of the spectrum weights results in the speedup scheme of carrying out the energy storage due to the existence of bound states. In the self-discharging process, increasing the spectral weight allows the battery to maintain a higher steady ergotropy. These results provide a practical approach to achieving optimal quantum batteries with better stabilization performance.
引用
收藏
页数:10
相关论文
共 50 条
  • [11] Photonic band-gap engineering of quasiperiodic photonic crystals
    Wang, YQ
    Jian, SS
    Han, SZ
    Feng, S
    Feng, ZF
    Cheng, BY
    Zhang, DZ
    JOURNAL OF APPLIED PHYSICS, 2005, 97 (10)
  • [12] Photonic band-gap engineering of quasiperiodic photonic crystals
    Wang, Yiquan
    Jian, Shuisheng
    Han, Shouzhen
    Feng, Shuai
    Feng, Zhifang
    Cheng, Bingying
    Zhang, Daozhong
    Journal of Applied Physics, 2005, 97 (10):
  • [13] Band structure and band-gap control in photonic superlattices
    Cavalcanti, S. B.
    de Dios-Leyva, M.
    Reyes-Gomez, E.
    Oliveira, L. E.
    PHYSICAL REVIEW B, 2006, 74 (15)
  • [14] Open-loop folded ring mimics photonic band-gap device
    Virdee, B. S.
    Virdee, A. S.
    2006 EUROPEAN MICROWAVE CONFERENCE, VOLS 1-4, 2006, : 538 - +
  • [15] Polymer photonic crystal band-gap modulation using PbS quantum dots
    Diacon, Aurel
    Rusen, Edina
    Mocanu, Alexandra
    Nistor, Leona Cristina
    JOURNAL OF MATERIALS CHEMISTRY C, 2013, 1 (28) : 4350 - 4357
  • [16] Enhanced third-harmonic generation in photonic crystals at band-gap pumping
    Yurchenko, Stanislav O.
    Zaytsev, Kirill I.
    Gorbunov, Evgeny A.
    Yakovlev, Egor V.
    Zotov, Arsen K.
    Masalov, Vladimir M.
    Emelchenko, Gennadi A.
    Gorelik, Vladimir S.
    JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2017, 50 (05)
  • [17] Photonic band-gap inhibition of modulational instabilities
    Gomila, D
    Zambrini, R
    Oppo, GL
    PHYSICAL REVIEW LETTERS, 2004, 92 (25) : 253904 - 1
  • [18] Band-Gap Photonic Structures in Dichromate Pullulan
    Savic-Sevic, Svetlana
    Pantelic, Dejan
    Nikolic, Marko
    Jelenkovic, Branislav
    MATERIALS AND MANUFACTURING PROCESSES, 2009, 24 (10-11) : 1127 - 1129
  • [19] A photonic band-gap planar hollow waveguide
    Fedotov, AB
    Konorov, SO
    Naumov, AN
    Haus, JW
    Miles, RB
    Sidorov-Biryukov, DA
    Chigarev, NV
    Zheltikov, AM
    ICONO 2001: FUNDAMENTAL ASPECTS OF LASER-MATTER INTERACTION AND PHYSICS OF NANOSTRUCTURES, 2002, 4748 : 331 - 339
  • [20] Highly dispersive photonic band-gap prism
    Lin, SY
    Hietala, VM
    Wang, L
    Jones, ED
    OPTICS LETTERS, 1996, 21 (21) : 1771 - 1773