Interaction-enabled topological phases in topological insulator–superconductor heterostructures

D. I. Pikulin, Ching-Kai Chiu, Xiaoyu Zhu, and M. Franz
Phys. Rev. B 92, 075438 – Published 24 August 2015

Abstract

Topological phases of matter that depend for their existence on interactions are fundamentally interesting and potentially useful as platforms for future quantum computers. Despite the multitude of theoretical proposals, the only interaction-enabled topological phase experimentally observed is the fractional quantum Hall liquid. To help identify other systems that can give rise to such phases, we present in this work a detailed study of the effect of interactions on Majorana zero modes bound to vortices in a superconducting surface of a three-dimensional topological insulator. This system is of interest because, as was recently pointed out, it can be tuned into the regime of strong interactions. We start with a zero-dimensional system suggesting an experimental realization of the interaction-induced Z8 ground-state periodicity previously discussed by Fidkowski and Kitaev [Phys. Rev. B 81, 134509 (2010); Phys. Rev. B 83, 075103 (2011)] . We argue that the periodicity is experimentally observable using a tunnel probe. We then focus on interaction-enabled crystalline topological phases that can be built with the Majoranas in a vortex lattice in higher dimensions. In one dimension, we identify an interesting exactly solvable model which is related to a previously discussed one that exhibits an interaction-enabled topological phase. We study these models using analytical techniques, exact numerical diagonalization, and density matrix renormalization group. Our results confirm the existence of the interaction-enabled topological phase and clarify the nature of the quantum phase transition that leads to it. We finish with a discussion of models in dimensions 2 and 3 that produce similar interaction-enabled topological phases.

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  • Received 6 July 2015

DOI:https://doi.org/10.1103/PhysRevB.92.075438

©2015 American Physical Society

Authors & Affiliations

D. I. Pikulin1,*, Ching-Kai Chiu1, Xiaoyu Zhu1,2, and M. Franz1

  • 1Department of Physics and Astronomy and Quantum Matter Institute, University of British Columbia, Vancouver, BC, Canada V6T 1Z1
  • 2National Laboratory of Solid State Microstructures and Department of Physics, Nanjing University - Nanjing 210093, China

  • *pikulin@phas.ubc.ca

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Vol. 92, Iss. 7 — 15 August 2015

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