Welcome to the new version of CaltechAUTHORS. Login is currently restricted to library staff. If you notice any issues, please email coda@library.caltech.edu
Published December 22, 2014 | Submitted + Published
Journal Article Open

Model Realization and Numerical Studies of a Three-Dimensional Bosonic Topological Insulator and Symmetry-Enriched Topological Phases

Abstract

We study a topological phase of interacting bosons in (3 + 1) dimensions that is protected by charge conservation and time-reversal symmetry. We present an explicit lattice model that realizes this phase and that can be studied in sign-free Monte Carlo simulations. The idea behind our model is to bind bosons to topological defects called hedgehogs. We determine the phase diagram of the model and identify a phase where such bound states are proliferated. In this phase, we observe a Witten effect in the bulk whereby an external monopole binds half of the elementary boson charge, which confirms that it is a bosonic topological insulator. We also study the boundary between the topological insulator and a trivial insulator. We find a surface phase diagram that includes exotic superfluids, a topologically ordered phase, and a phase with a Hall effect quantized to one-half of the value possible in a purely two-dimensional system. We also present models that realize symmetry-enriched topologically ordered phases by binding multiple hedgehogs to each boson; these phases show charge fractionalization and intrinsic topological order as well as a fractional Witten effect.

Additional Information

© 2014 American Physical Society. Published 22 December 2014. Received 5 September 2014. We thank M. Metlitski, M. P. A. Fisher, F. Burnell, A. Kapustin, C. von Keyserlingk, J. Preskill, T. Senthil, and A. Vishwanath for many useful discussions. We are particularly indebted to Max Metlitski and Matthew Fisher for sharing their unpublished results and crucial insights guiding our work, and also for carefully reading the manuscript and suggesting many improvements. This research is supported by the National Science Foundation through Grant No. DMR-1206096, and by the Caltech Institute of Quantum Information and Matter, a NSF Physics Frontiers Center with support of the Gordon and Betty Moore Foundation.

Attached Files

Published - PhysRevX.4.041049.pdf

Submitted - 1408.1096v1.pdf

Files

PhysRevX.4.041049.pdf
Files (1.7 MB)
Name Size Download all
md5:204803d3f0e821843ea191d8f3fe68cb
1.2 MB Preview Download
md5:1ea9696229125d978c64d8d1f49b5583
557.2 kB Preview Download

Additional details

Created:
August 20, 2023
Modified:
October 19, 2023