Kondo effect in twisted bilayer graphene

被引:7
|
作者
Shankar, A. S. [1 ]
Oriekhov, D. O. [1 ]
Mitchell, Andrew K. [2 ,3 ]
Fritz, L. [4 ]
机构
[1] Leiden Univ, Inst Lorentz, POB 9506, NL-2300 RA Leiden, Netherlands
[2] Univ Coll Dublin, Sch Phys, Dublin, Ireland
[3] Univ Coll Dublin, Ctr Quantum Engn Sci & Technol, Dublin, Ireland
[4] Univ Utrecht, Inst Theoret Phys, Princetonplein 5, NL-3584 CC Utrecht, Netherlands
基金
欧洲研究理事会; 欧盟地平线“2020”;
关键词
RENORMALIZATION-GROUP METHOD; MAGIC-ANGLE; MOIRE BANDS; IMPURITY; ANDERSON; ELECTRON; SINGULARITIES; STATES;
D O I
10.1103/PhysRevB.107.245102
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The emergence of flat bands in twisted bilayer graphene at the magic angle can be understood in terms of a vanishing Fermi velocity of the Dirac cone. This is associated with van Hove singularities approaching the Fermi energy and becoming higher-order. In the density of states, this is reflected by flanking logarithmic van Hove divergences pinching off the central Dirac cone in energy space. The low-energy pseudogap of the Dirac cone away from the magic angle is replaced by a power-law divergence due to the higher-order van Hove singularity at the magic angle. This plays an important role in the exotic phenomena observed in this material, such as superconductivity and magnetism, by amplifying electronic correlation effects. Here we investigate one such correlation effect-the Kondo effect due to a magnetic impurity embedded in twisted bilayer graphene. We use the Bistritzer-MacDonald model to extract the low-energy density of states of the material as a function of twist angle and study the resulting quantum impurity physics using perturbative and numerical renormalization group methods. Although at zero temperature the impurity is only Kondo screened precisely at the magic angle, we find highly nontrivial behavior at finite temperatures relevant to experiments, due to the complex interplay between Dirac, van Hove, and Kondo physics.
引用
收藏
页数:15
相关论文
共 50 条
  • [21] Quantum Hall effect in graphene with twisted bilayer stripe defects
    Lofwander, Tomas
    San-Jose, Pablo
    Prada, Elsa
    PHYSICAL REVIEW B, 2013, 87 (20)
  • [22] Quantum anomalous Hall effect in twisted bilayer graphene quasicrystal
    李泽东
    王征飞
    Chinese Physics B, 2020, 29 (10) : 495 - 499
  • [23] Giant nonlinear Hall effect in strained twisted bilayer graphene
    Zhang, Cheng-Ping
    Xiao, Jiewen
    Zhou, Benjamin T.
    Hu, Jin-Xin
    Xie, Ying-Ming
    Yan, Binghai
    Law, K. T.
    PHYSICAL REVIEW B, 2022, 106 (04)
  • [24] Quantum anomalous Hall effect in twisted bilayer graphene quasicrystal*
    Li, Zedong
    Wang, Z. F.
    CHINESE PHYSICS B, 2020, 29 (10)
  • [25] Anomalous Hall effect at half filling in twisted bilayer graphene
    Chun-Chih Tseng
    Xuetao Ma
    Zhaoyu Liu
    Kenji Watanabe
    Takashi Taniguchi
    Jiun-Haw Chu
    Matthew Yankowitz
    Nature Physics, 2022, 18 : 1038 - 1042
  • [26] Energy spectrum and quantum Hall effect in twisted bilayer graphene
    Moon, Pilkyung
    Koshino, Mikito
    PHYSICAL REVIEW B, 2012, 85 (19):
  • [27] Kondo effect near the van hove singularity in biased bilayer graphene
    Lipinski, Stanislaw
    Krychowski, Damian
    JOURNAL OF THE KOREAN PHYSICAL SOCIETY, 2013, 62 (10) : 1440 - 1444
  • [28] Kondo effect near the van hove singularity in biased bilayer graphene
    Stanisław Lipiński
    Damian Krychowski
    Journal of the Korean Physical Society, 2013, 62 : 1440 - 1444
  • [29] Twisted bilayer graphene as a linear nanoactuator
    Meng, Zhisen
    Wu, Zhenyan
    Carrete, Jesus
    Wang, Zhao
    PHYSICAL REVIEW B, 2020, 102 (15)
  • [30] Lattice reconstruction in twisted bilayer graphene
    Fu, Zhongqiu
    Zhou, Xiaofeng
    He, Lin
    JOURNAL OF PHYSICS-CONDENSED MATTER, 2025, 37 (07)