Tunable quantum interferometer for correlated moiré electrons

被引:0
|
作者
Shuichi Iwakiri
Alexandra Mestre-Torà
Elías Portolés
Marieke Visscher
Marta Perego
Giulia Zheng
Takashi Taniguchi
Kenji Watanabe
Manfred Sigrist
Thomas Ihn
Klaus Ensslin
机构
[1] ETH Zurich,Laboratory for Solid State Physics
[2] National Institute for Materials Science,Research Center for Materials Nanoarchitectonics
[3] National Institute for Materials Science,Research Center for Electronic and Optical Materials
[4] ETH Zurich,Institute for Theoretical Physics
[5] ETH Zurich,Quantum Center
来源
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Magic-angle twisted bilayer graphene can host a variety of gate-tunable correlated states – including superconducting and correlated insulator states. Recently, junction-based superconducting moiré devices have been introduced, enabling the study of the charge, spin and orbital nature of superconductivity, as well as the coherence of moiré electrons in magic-angle twisted bilayer graphene. Complementary fundamental coherence effects—in particular, the Little–Parks effect in a superconducting ring and the Aharonov–Bohm effect in a normally conducting ring – have not yet been reported in moiré devices. Here, we observe both phenomena in a single gate-defined ring device, where we can embed a superconducting or normally conducting ring in a correlated or band insulator. The Little–Parks effect is seen in the superconducting phase diagram as a function of density and magnetic field, confirming the effective charge of 2e. We also find that the coherence length of conducting moiré electrons exceeds several microns at 50 mK. In addition, we identify a regime characterized by h/e-periodic oscillations but with superconductor-like nonlinear transport.
引用
收藏
相关论文
共 50 条
  • [41] MAGNETOOPTICAL SPECTRA OF STRONGLY CORRELATED ELECTRONS IN NONPARABOLIC QUANTUM DOTS
    XIE, XC
    DASSARMA, S
    HE, S
    PHYSICAL REVIEW B, 1993, 48 (11): : 8454 - 8457
  • [42] Correlated Electrons in Fe-As Compounds: A Quantum Chemical Perspective
    Hozoi, L.
    Fulde, P.
    PHYSICAL REVIEW LETTERS, 2009, 102 (13)
  • [43] Hidden symmetry and correlated states of electrons and holes in quantum dots
    Hawrylak, P
    SOLID STATE COMMUNICATIONS, 2003, 127 (12) : 793 - 798
  • [44] Gauge fixing for strongly correlated electrons coupled to quantum light
    Dmytruk, Olesia
    Schiro, Marco
    PHYSICAL REVIEW B, 2021, 103 (07)
  • [45] Correlated counting of single electrons in a nanowire double quantum dot
    Choi, Theodore
    Shorubalko, Ivan
    Gustavsson, Simon
    Schoen, Silke
    Ensslin, Klaus
    NEW JOURNAL OF PHYSICS, 2009, 11
  • [46] Communication: An adaptive configuration interaction approach for strongly correlated electrons with tunable accuracy
    Schriber, Jeffrey B.
    Evangelista, Francesco A.
    JOURNAL OF CHEMICAL PHYSICS, 2016, 144 (16):
  • [47] Moiré engineering of electronic phenomena in correlated oxides
    Xinzhong Chen
    Xiaodong Fan
    Lin Li
    Nan Zhang
    Zhijing Niu
    Tengfei Guo
    Suheng Xu
    Han Xu
    Dongli Wang
    Huayang Zhang
    A. S. McLeod
    Zhenlin Luo
    Qingyou Lu
    Andrew J. Millis
    D. N. Basov
    Mengkun Liu
    Changgan Zeng
    Nature Physics, 2020, 16 : 631 - 635
  • [48] A new moiré interferometer for measuring in-plane displacement
    S. T. Lin
    Experimental Mechanics, 2001, 41 : 140 - 143
  • [49] Strong interaction between interlayer excitons and correlated electrons in WSe2/WS2 moiré superlattice
    Shengnan Miao
    Tianmeng Wang
    Xiong Huang
    Dongxue Chen
    Zhen Lian
    Chong Wang
    Mark Blei
    Takashi Taniguchi
    Kenji Watanabe
    Sefaattin Tongay
    Zenghui Wang
    Di Xiao
    Yong-Tao Cui
    Su-Fei Shi
    Nature Communications, 12
  • [50] Moiré engineering of electronic phenomena in correlated oxides
    Chen, Xinzhong
    Fan, Xiaodong
    Li, Lin
    Zhang, Nan
    Niu, Zhijing
    Guo, Tengfei
    Xu, Suheng
    Xu, Han
    Wang, Dongli
    Zhang, Huayang
    McLeod, A.S.
    Luo, Zhenlin
    Lu, Qingyou
    Millis, Andrew J.
    Basov, D.N.
    Liu, Mengkun
    Zeng, Changgan
    Nature Physics, 2020, 16 (06): : 631 - 635