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Engineering Time-Reversal Invariant Topological Insulators With Ultra-Cold Atoms

Quantum Gases 2010-12-23 v2 Mesoscale and Nanoscale Physics Quantum Physics

Abstract

Topological insulators are a broad class of unconventional materials that are insulating in the interior but conduct along the edges. This edge transport is topologically protected and dissipationless. Until recently, all existing topological insulators, known as quantum Hall states, violated time-reversal symmetry. However, the discovery of the quantum spin Hall effect demonstrated the existence of novel topological states not rooted in time-reversal violations. Here, we lay out an experiment to realize time-reversal topological insulators in ultra-cold atomic gases subjected to synthetic gauge fields in the near-field of an atom-chip. In particular, we introduce a feasible scheme to engineer sharp boundaries where the "edge states" are localized. Besides, this multi-band system has a large parameter space exhibiting a variety of quantum phase transitions between topological and normal insulating phases. Due to their unprecedented controllability, cold-atom systems are ideally suited to realize topological states of matter and drive the development of topological quantum computing.

Keywords

Cite

@article{arxiv.1002.0219,
  title  = {Engineering Time-Reversal Invariant Topological Insulators With Ultra-Cold Atoms},
  author = {N. Goldman and I. Satija and P. Nikolic and A. Bermudez and M. A. Martin-Delgado and M. Lewenstein and I. B. Spielman},
  journal= {arXiv preprint arXiv:1002.0219},
  year   = {2010}
}

Comments

11 pages, 6 figures