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Published September 15, 2016 | Published + Submitted
Journal Article Open

Ising anyons in frustration-free Majorana-dimer models

Abstract

Dimer models have long been a fruitful playground for understanding topological physics. Here, we introduce a class, termed Majorana-dimer models, wherein bosonic dimers are decorated with pairs of Majorana modes. We find that the simplest examples of such systems realize an intriguing, intrinsically fermionic phase of matter that can be viewed as the product of a chiral Ising theory, which hosts deconfined non-Abelian quasiparticles, and a topological p_x−ip_y superconductor. While the bulk anyons are described by a single copy of the Ising theory, the edge remains fully gapped. Consequently, this phase can arise in exactly solvable, frustration-free models. We describe two parent Hamiltonians: one generalizes the well-known dimer model on the triangular lattice, while the other is most naturally understood as a model of decorated fluctuating loops on a honeycomb lattice. Using modular transformations, we show that the ground-state manifold of the latter model unambiguously exhibits all properties of the Ising×(p_x−ip_y) theory. We also discuss generalizations with more than one Majorana mode per site, which realize phases related to Kitaev's 16-fold way in a similar fashion.

Additional Information

© 2016 American Physical Society. Received 15 June 2016; published 12 September 2016. We gratefully acknowledge C. Nayak for explaining the results in Refs. [14,15]; D. Aasen, X. Chen, Z.-C. Gu, R. Lutchyn, and H.-H. Tu for helpful discussions; and K. Walker for explaining his unpublished work. This work was supported by the NSF through Grant No. DMR-1341822 (J.A. and J.H.S.); the Caltech Institute for Quantum Information and Matter, an NSF Physics Frontiers Center with support of the Gordon and Betty Moore Foundation; and the Walter Burke Institute for Theoretical Physics at Caltech.

Attached Files

Published - PhysRevB.94.115127.pdf

Submitted - 1605.06125v2.pdf

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