Persistent currents in nanorings and quantum decoherence by Coulomb interaction

被引:5
|
作者
Semenov, Andrew G. [1 ]
Zaikin, Andrei D. [1 ,2 ]
机构
[1] PN Lebedev Phys Inst, IE Tamm Dept Theoret Phys, Moscow 119991, Russia
[2] Forschungszentrum Karlsruhe, Inst Nanotechnol, D-76021 Karlsruhe, Germany
关键词
WEAK-LOCALIZATION; GROUND-STATE; FLUCTUATIONS; DYNAMICS; ELECTRONS; PARTICLE;
D O I
10.1103/PhysRevB.80.155312
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Employing instanton technique we evaluate equilibrium persistent current (PC) produced by a quantum particle moving in a periodic potential on a ring and interacting with a dissipative environment formed by diffusive electron gas. The model allows for detailed nonperturbative analysis of interaction effects and, depending on the system parameters, yields a rich structure of different regimes. We demonstrate that at low temperatures PC is exponentially suppressed at sufficiently large ring perimeters 2 pi R>L-phi, where the dephasing length L-phi is set by interactions and does not depend on temperature. This behavior represents a clear example of quantum decoherence by electron-electron interactions at T -> 0.Employing instanton technique we evaluate equilibrium persistent current (PC) produced by a quantum particle moving in a periodic potential on a ring and interacting with a dissipative environment formed by diffusive electron gas. The model allows for detailed nonperturbative analysis of interaction effects and, depending on the system parameters, yields a rich structure of different regimes. We demonstrate that at low temperatures PC is exponentially suppressed at sufficiently large ring perimeters 2 pi R>L-phi, where the dephasing length L-phi is set by interactions and does not depend on temperature. This behavior represents a clear example of quantum decoherence by electron-electron interactions at T -> 0.
引用
收藏
页数:11
相关论文
共 50 条
  • [31] Coulomb interaction effects on the terahertz photon-assisted tunneling through an InAs quantum dot
    Yuan, R. -Y.
    Zhu, G. -B.
    Zhao, X.
    Guo, Y.
    Yan, H.
    Sun, Q.
    Ji, A. -C.
    PHYSICAL REVIEW B, 2014, 89 (19)
  • [32] Emergence of singularities from decoherence: Quantum catastrophes
    Goldberg, Aaron Z.
    Al-Qasimi, Asma
    Mumford, J.
    O'Dell, D. H. J.
    PHYSICAL REVIEW A, 2019, 100 (06)
  • [33] Relativistic Quantum Bayesian Game Under Decoherence
    Situ, Haozhen
    Huang, Zhiming
    INTERNATIONAL JOURNAL OF THEORETICAL PHYSICS, 2016, 55 (05) : 2354 - 2363
  • [34] The effect of quantum decoherence on inflationary gravitational waves
    de Kruijf, Jessie
    Bartolo, Nicola
    JOURNAL OF COSMOLOGY AND ASTROPARTICLE PHYSICS, 2024, (11):
  • [35] Disentangling Scrambling and Decoherence via Quantum Teleportation
    Yoshida, Beni
    Yao, Norman Y.
    PHYSICAL REVIEW X, 2019, 9 (01):
  • [36] Freezing of quantum correlations under local decoherence
    Chanda, Titas
    Pal, Amit Kumar
    Biswas, Anindya
    Sen, Aditi
    Sen, Ujjwal
    PHYSICAL REVIEW A, 2015, 91 (06):
  • [37] Decoherence in generalized measurement and the quantum Zeno paradox
    Mack, Gerhard
    Wallentowitz, Sascha
    Toschek, Peter E.
    PHYSICS REPORTS-REVIEW SECTION OF PHYSICS LETTERS, 2014, 540 (01): : 1 - 23
  • [38] Decoherence-Free Linear Quantum Subsystems
    Yamamoto, Naoki
    IEEE TRANSACTIONS ON AUTOMATIC CONTROL, 2014, 59 (07) : 1845 - 1857
  • [39] Electron thermalization and quantum decoherence in metal nanostructures
    Jasiak, R.
    Manfredi, G.
    Hervieux, P. -A.
    PHYSICAL REVIEW B, 2010, 81 (24):
  • [40] Quantum decoherence of interacting electrons in arrays of quantum dots and diffusive conductors
    Golubev, Dmitri S.
    Zaikin, Andrei D.
    PHYSICA E-LOW-DIMENSIONAL SYSTEMS & NANOSTRUCTURES, 2007, 40 (01) : 32 - 49