0-π phase-controllable thermal Josephson junction

被引:0
|
作者
Fornieri A. [1 ]
Timossi G. [1 ]
Virtanen P. [1 ]
Solinas P. [2 ]
Giazotto F. [1 ]
机构
[1] NEST, Istituto Nanoscienze-CNR, Scuola Normale Superiore, Piazza S. Silvestro 12, Pisa
[2] SPIN-CNR, Via Dodecaneso 33, Genova
关键词
D O I
10.1038/nnano.2017.25
中图分类号
学科分类号
摘要
Two superconductors coupled by a weak link support an equilibrium Josephson electrical current that depends on the phase difference • between the superconducting condensates. Yet, when a temperature gradient is imposed across the junction, the Josephson effect manifests itself through a coherent component of the heat current that flows opposite to the thermal gradient for • < π/2 (refs 2-4). The direction of both the Josephson charge and heat currents can be inverted by adding a π shift to •. In the static electrical case, this effect has been obtained in a few systems, for example via a ferromagnetic coupling or a non-equilibrium distribution in the weak link. These structures opened new possibilities for superconducting quantum logic and ultralow-power superconducting computers. Here, we report the first experimental realization of a thermal Josephson junction whose phase bias can be controlled from 0 to π. This is obtained thanks to a superconducting quantum interferometer that allows full control of the direction of the coherent energy transfer through the junction. This possibility, in conjunction with the completely superconducting nature of our system, provides temperature modulations with an unprecedented amplitude of -1/4100 mK and transfer coefficients exceeding 1 K per flux quantum at 25 mK. Then, this quantum structure represents a fundamental step towards the realization of caloritronic logic components such as thermal transistors, switches and memory devices. These elements, combined with heat interferometers and diodes, would complete the thermal conversion of the most important phase-coherent electronic devices and benefit cryogenic microcircuits requiring energy management, such as quantum computing architectures and radiation sensors. © 2017 Macmillan Publishers Limited, part of Springer Nature. All rights reserved.
引用
收藏
页码:425 / 429
页数:4
相关论文
共 50 条
  • [1] 0-π phase-controllable thermal Josephson junction
    Fornieri, Antonio
    Timossi, Giuliano
    Virtanen, Pauli
    Solinas, Paolo
    Giazotto, Francesco
    NATURE NANOTECHNOLOGY, 2017, 12 (05) : 425 - 429
  • [2] Phase dynamics of a closed 0-π josephson junction
    Koyama, T.
    Machida, M.
    Kato, A.
    Ishida, T.
    LOW TEMPERATURE PHYSICS, PTS A AND B, 2006, 850 : 779 - +
  • [3] Semifluxons with a hump in a 0-π Josephson junction
    Susanto, H
    van Gils, SA
    PHYSICA C-SUPERCONDUCTIVITY AND ITS APPLICATIONS, 2004, 408 : 579 - 580
  • [4] 0-π qubit with one Josephson junction
    Guo, Guo-Liang
    Leng, Han-Bing
    Hu, Yong
    Liu, Xin
    PHYSICAL REVIEW B, 2022, 105 (18)
  • [5] Stability analysis of π-kinks in a 0-π Josephson junction
    Derks, G.
    Doelman, A.
    van Gils, S. A.
    Susanto, H.
    SIAM JOURNAL ON APPLIED DYNAMICAL SYSTEMS, 2007, 6 (01): : 99 - 141
  • [6] Local dynamic behaviors of long 0-π Josephson junction
    Hu, Weipeng
    Wang, Zhen
    Wang, Gangwei
    Wazwaz, Abdul-Majid
    PHYSICA SCRIPTA, 2020, 95 (08)
  • [7] 0-π transitions in a Josephson junction of an irradiated Weyl semimetal
    Khanna, Udit
    Rao, Sumathi
    Kundu, Arijit
    PHYSICAL REVIEW B, 2017, 95 (20)
  • [8] Controllable Josephson 0-π Junction Based on a Four-Layer Ferromagnetic-Superconductor System (FSFS)
    Borisova, N.
    Tumanov, V. A.
    Proshin, Yu N.
    PHYSICS OF METALS AND METALLOGRAPHY, 2020, 121 (05): : 434 - 438
  • [9] Controllable 0-π Josephson junctions containing a ferromagnetic spin valve
    Gingrich E.C.
    Niedzielski B.M.
    Glick J.A.
    Wang Y.
    Miller D.L.
    Loloee R.
    Pratt W.P., Jr.
    Birge N.O.
    Nature Physics, 2016, 12 (6) : 564 - 567
  • [10] Controllable 0-π Josephson junctions containing a ferromagnetic spin valve
    Gingrich, E. C.
    Niedzielski, Bethany M.
    Glick, Joseph A.
    Wang, Yixing
    Miller, D. L.
    Loloee, Reza
    Pratt, W. P., Jr.
    Birge, Norman O.
    NATURE PHYSICS, 2016, 12 (06) : 564 - +