4.7 Article

Boosting Majorana Zero Modes

Journal

PHYSICAL REVIEW X
Volume 3, Issue 4, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevX.3.041017

Keywords

-

Funding

  1. Institute for Quantum Information and Matter, an NSF Physics Frontiers Center
  2. Gordon and Betty Moore Foundation [GBMF1250]
  3. Packard Foundation
  4. Alexander-von-Humboldt Foundation
  5. Deutsche Forschungsgemeinschaft [SPP 1285]
  6. Helmholtz Virtual Institute New states of matter and their excitations
  7. Division Of Physics
  8. Direct For Mathematical & Physical Scien [1125565] Funding Source: National Science Foundation

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One-dimensional topological superconductors are known to host Majorana zero modes at domain walls terminating the topological phase. Their non-Abelian nature allows for processing quantum information by braiding operations that are insensitive to local perturbations, making Majorana zero modes a promising platform for topological quantum computation. Motivated by the ultimate goal of executing quantum-information processing on a finite time scale, we study domain walls moving at a constant velocity. We exploit an effective Lorentz invariance of the Hamiltonian to obtain an exact solution of the associated quasiparticle spectrum and wave functions for arbitrary velocities. Essential features of the solution have a natural interpretation in terms of the familiar relativistic effects of Lorentz contraction and time dilation. We find that the Majorana zero modes remain stable as long as the domain wall moves at subluminal velocities with respect to the effective speed of light of the system. However, the Majorana bound state dissolves into a continuous quasiparticle spectrum after the domain wall propagates at luminal or even superluminal velocities. This relativistic catastrophe implies that there is an upper limit for possible braiding frequencies even in a perfectly clean system with an arbitrarily large topological gap. We also exploit our exact solution to consider domain walls moving past static impurities present in the system.

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