Topological superconductivity in Fibonacci quasicrystals

被引:0
|
作者
Kobialka, Aksel [1 ]
Awoga, Oladunjoye A. [2 ]
Leijnse, Martin [2 ]
Domanski, Tadeusz [3 ]
Holmvall, Patric [1 ]
Black-Schaffer, Annica M. [1 ]
机构
[1] Uppsala Univ, Dept Phys & Astron, POB 516, S-75120 Uppsala, Sweden
[2] Lund Univ, Div Solid State Phys & NanoLund, POB 118, S-22100 Lund, Sweden
[3] M Curie Sklodowska Univ, Inst Phys, PL-20031 Lublin, Poland
基金
欧洲研究理事会; 瑞典研究理事会;
关键词
ANDREEV BOUND-STATES; SCHRODINGER-EQUATION; MAJORANA FERMIONS; WAVE-FUNCTIONS; SPECTRUM; NANOWIRE; PHASE; ORDER;
D O I
10.1103/PhysRevB.110.134508
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
We investigate the properties of a Fibonacci quasicrystal (QC) arrangement of a one-dimensional topological superconductor, such as a magnetic atom chain deposited on a superconducting surface. We uncover a general mutually exclusive competition between the QC properties and the topological superconducting phase with Majorana bound states (MBS): there are no MBS inside the QC gaps and the MBS never behave as QC subgap states and, likewise, no critical or winding QC subgap states exist inside the topological superconducting gaps. Surprisingly, despite this competition, we find that the QC is still highly beneficial for realizing topological superconductivity with MBS. It both leads to additional large nontrivial regions with MBS in parameter space, that are topologically trivial in crystalline systems, and increases the topological gap protecting the MBS. We also find that shorter approximants of the Fibonacci QC display the largest benefits. As a consequence, our results promote QCs, and especially their short approximants, as an appealing platform for improved experimental possibilities to realize MBS as well as generally highlight the fundamental interplay between different topologies.
引用
收藏
页数:20
相关论文
共 50 条
  • [41] Topological Mirror Superconductivity
    Zhang, Fan
    Kane, C. L.
    Mele, E. J.
    PHYSICAL REVIEW LETTERS, 2013, 111 (05)
  • [42] Superconductivity in topological semimetals
    Jian Wang
    NationalScienceReview, 2019, 6 (02) : 199 - 202
  • [43] Superconductivity in topological materials
    Gu Kai-Yuan
    Luo Tian-Chuang
    Ge Jun
    Wang Jian
    ACTA PHYSICA SINICA, 2020, 69 (02)
  • [44] Fibonacci Primes and Topological Biomolecular Mechanics
    Gurel, Okan
    Gurel, Demet
    BIOPHYSICAL JOURNAL, 2011, 100 (03) : 238 - 239
  • [45] Fracton superconductivity in quasicrystals - a theoretical possibility suggested by experiment
    Moulopoulos, K
    Cyrot-Lackmann, F
    PHYSICS LETTERS A, 1999, 261 (1-2) : 119 - 124
  • [46] Fracton superconductivity in quasicrystals - A theoretical possibility suggested by experiment
    Moulopoulos, K.
    Cyrot-Lackmann, F.
    Physics Letters, Section A: General, Atomic and Solid State Physics, 1999, 261 (1-2): : 119 - 124
  • [47] Topological wave phenomena in photonic time quasicrystals
    Ni, Xiang
    Yin, Shixiong
    Li, Huanan
    Alu, Andrea
    PHYSICAL REVIEW B, 2025, 111 (12)
  • [48] Chiral photonic topological states in Penrose quasicrystals
    Zhang, Yingfang
    Lan, Zhihao
    Hu, Liyazhou
    Shu, Yiqing
    Yuan, Xun
    Guo, Penglai
    Peng, Xiaoling
    Chen, Weicheng
    LI, Jianqing
    OPTICS LETTERS, 2023, 48 (09) : 2229 - 2232
  • [49] Higher-Order Topological Insulators in Quasicrystals
    Chen, Rui
    Chen, Chui-Zhen
    Gao, Jin-Hua
    Zhou, Bin
    Xu, Dong-Hui
    PHYSICAL REVIEW LETTERS, 2020, 124 (03)
  • [50] Observation of Topological Phase Transitions in Photonic Quasicrystals
    Verbin, Mor
    Zilberberg, Oded
    Kraus, Yaacov E.
    Lahini, Yoav
    Silberberg, Yaron
    PHYSICAL REVIEW LETTERS, 2013, 110 (07)