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Flux-stabilized Majorana zero modes in coupled one-dimensional Fermi wires

机译:耦合一维费米电线的磁通稳定的Majorana零模式

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摘要

One promising avenue to study one-dimensional (1D) topological phases is to realize them in synthetic materials such as cold atomic gases. Intriguingly, it is possible to realize Majorana boundary modes in a 1D number-conserving system consisting of two fermionic chains coupled only by pair-hopping processes [C. V. Kraus et al., Phys. Rev. Lett. 111, 173004 (2013)]. It is commonly believed that significant interchain single-particle tunneling necessarily destroys these Majorana modes, as it spoils the Z(2) fermion-parity symmetry that protects them. In this Rapid Communication, we present a mechanism to overcome this obstacle, by piercing a (synthetic) magnetic pi flux through each plaquette of the Fermi ladder. Using bosonization, we show that in this case there exists an exact leg-interchange symmetry that is robust to interchain hopping, and acts as fermion parity at long wavelengths. We utilize density matrix renormalization group and exact diagonalization to verify that the resulting model exhibits Majorana boundary modes up to large single-particle tunnelings, comparable to the intrachain hopping strength. Our work highlights the unusual impacts of different topologically trivial band structures on these interaction-driven topological phases, and identifies a distinct route to stabilizing Majorana boundary modes in 1D fermionic ladders.
机译:一个有希望的学习一维(1D)拓扑阶段的承诺大道是在诸如冷原子气体的合成材料中实现它们。有趣的是,可以在由双跳跃过程中仅耦合的两个Fermionic链组成的1D号码保守系统中实现Majorana边界模式[C. V. Kraus等人。,phy。 rev. lett。 111,173004(2013)]。通常认为,显着的间隔单粒子隧道必然会破坏这些Majorana模式,因为它破坏了保护它们的Z(2)奇偶奇偶依赖性对称性。在这种快速的沟通中,我们提出了一种机制来克服这种障碍,通过刺穿(合成)磁性PI通量穿过费米梯的每个斑块。使用挥索化,我们表明,在这种情况下,存在具有稳健的精确腿交换对称性,该对称是在长波长的长波长下充当光环奇偶校验。我们利用密度矩阵重整化组和精确的对角化以验证所得模型是否呈现出大型单粒子隧道的Majorana边界模式,与夹内跳跃强度相当。我们的作品突出了不同拓扑普通带结构对这些相互作用驱动的拓扑阶段的不寻常影响,并识别了在1D Fermionic梯子中稳定Majorana边界模式的不同途径。

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  • 来源
    《Physical review, B》 |2018年第16期|共6页
  • 作者单位

    Univ Minnesota Sch Phys &

    Astron Minneapolis MN 55455 USA;

    Fudan Univ Dept Phys Shanghai 200433 Peoples R China;

    Univ Houston Texas Ctr Superconduct Houston TX 77204 USA;

    Fudan Univ Dept Phys Shanghai 200433 Peoples R China;

    Univ Minnesota Sch Phys &

    Astron Minneapolis MN 55455 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 固体物理学;
  • 关键词

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