Anyonic Interferometry and Protected Memories in Atomic Spin Lattices
POSTER
Abstract
Systems with topological order can exhibit remarkable phenomena such as quasi-particles with anyonic statistics and might be used for naturally error-free quantum computation. Here we describe how to unambiguously detect and characterize such states in recently proposed spin lattice realizations using ultra-cold atoms or molecules trapped in an optical lattice. We propose an experimentally feasible technique to access non-local degrees of freedom by performing global operations on trapped spins mediated by an optical cavity mode. We show how to reliably read and write topologically protected quantum memory using an atomic or photonic qubit. Furthermore, our technique can be used to probe statistics and dynamics of anyonic excitations.
Authors
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Liang Jiang
Physics Department, Harvard University
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Gavin Brennen
Institute for Theoretical Physics, University of Innsbruck
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Alexey Gorshkov
Harvard University, Physics Department, Harvard University
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Klemens Hammerer
Institute for Theoretical Physics, University of Innsbruck
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Mohammad Hafezi
Harvard University, Physics Department, Harvard University
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Eugene Demler
Physics Department, Harvard University
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Mikhail Lukin
Harvard University, Department of Physics, Harvard University, Physics Department, Harvard University
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Peter Zoller
Institute for Quantum Optics and Quantum Information of the Austrian Academy of Sciences, Institute for Theoretical Physics, University of Innsbruck