Higher-order topological Dirac superconductors

被引:44
|
作者
Zhang, Rui-Xing [1 ]
Hsu, Yi-Ting
Das Sarma, S.
机构
[1] Univ Maryland, Condensed Matter Theory Ctr, College Pk, MD 20742 USA
关键词
GROUND-STATE PROPERTIES; FERMION; UPD2AL3;
D O I
10.1103/PhysRevB.102.094503
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We introduce higher-order topological Dirac superconductor (HOTDSC) as a gapless topological phase of matter in three dimensions, which extends the notion of Dirac phase to a higher-order topological version. Topologically distinct from the traditional topological superconductors and known Dirac superconductors, a HOTDSC features Majorana hinge modes between adjacent surfaces, which are direct consequences of the symmetry-protected higher-order band topology manifesting in the system. Specifically, we show that rotational, spatial inversion, and time-reversal symmetries together protect the coexistence of bulk Dirac nodes and hinge Majorana modes in a seamless way. We define a set of topological indices that fully characterizes the HOTDSC. We further show that a practical way to realize the HOTDSC phase is to introduce unconventional odd-parity pairing to a three-dimensional Dirac semimetal while preserving the necessary symmetries. As a concrete demonstration of our idea, we construct a corresponding minimal lattice model for HOTDSC obeying the symmetry constraints. Our model exhibits the expected topological invariants in the bulk and the defining spectroscopic features on an open geometry, as we explicitly verify both analytically and numerically. Remarkably, the HOTDSC phase offers an example of a "higher-order topological quantum critical point, which enables realizations of various higher-order topological phases under different symmetry-breaking patterns. In particular, by breaking the inversion symmetry of a HOTDSC, we arrive at a higher-order Weyl superconductor, which is yet another gapless topological state that exhibits hybrid higher-order topology.
引用
收藏
页数:16
相关论文
共 50 条
  • [1] Higher-order topological insulators and superconductors
    Yan Zhong-Bo
    [J]. ACTA PHYSICA SINICA, 2019, 68 (22)
  • [2] Intrinsically interacting higher-order topological superconductors
    Zhang, Hao-Ran
    Zhang, Jian-Hao
    Gu, Zheng-Cheng
    Zhang, Rui-Xing
    Yang, Shuo
    [J]. PHYSICAL REVIEW B, 2023, 108 (06)
  • [3] Higher-order topological superconductors based on weak topological insulators
    Luo, Xun-Jiang
    Pan, Xiao-Hong
    Liu, Xin
    [J]. PHYSICAL REVIEW B, 2021, 104 (10)
  • [4] Higher-order topological superconductors in P-, T-odd quadrupolar Dirac materials
    Roy, Bitan
    [J]. PHYSICAL REVIEW B, 2020, 101 (22)
  • [5] Dirac equation perspective on higher-order topological insulators
    Schindler, Frank
    [J]. JOURNAL OF APPLIED PHYSICS, 2020, 128 (22)
  • [6] Dirac signal processing of higher-order topological signals
    Calmon, Lucille
    Schaub, Michael T.
    Bianconi, Ginestra
    [J]. NEW JOURNAL OF PHYSICS, 2023, 25 (09):
  • [7] Unhinging the Surfaces of Higher-Order Topological Insulators and Superconductors
    Tiwari, Apoorv
    Li, Ming-Hao
    Bernevig, B. A.
    Neupert, Titus
    Parameswaran, S. A.
    [J]. PHYSICAL REVIEW LETTERS, 2020, 124 (04)
  • [8] Higher-order topological superconductors as generators of quantum codes
    You, Yizhi
    Litinski, Daniel
    von Oppen, Felix
    [J]. PHYSICAL REVIEW B, 2019, 100 (05)
  • [9] Higher-order topological superconductors from Weyl semimetals
    Jahin, Ammar
    Tiwari, Apoory
    Wang, Yuxuan
    [J]. SCIPOST PHYSICS, 2022, 12 (02):
  • [10] Hierarchy of higher-order topological superconductors in three dimensions
    Ghosh, Arnob Kumar
    Nag, Tanay
    Saha, Arijit
    [J]. PHYSICAL REVIEW B, 2021, 104 (13)