Quantum simulation of a spin chain with superconducting circuits
ORAL
Abstract
Initial experimental efforts to simulate this model have focused on cold atoms [1] and trapped ion systems [2,3] with limited coupling strength imposed by the laws of nature. Our experiment uses an artificial spin chain made of highly anharmonic fluxonium qubits [4] arranged on a lattice and coupled to one another by mutual inductance. While the transverse magnetic field and on-site energy can be tuned in situ, disorder and coupling strength can be adjusted at will by microfabrication enabling us to reach unprecedented parameter regimes.
A deeper understanding of the competition and resulting transitions between phases of matter could provide insights into the properties of complex materials and more generally into the many-body physics of quantum systems.
[1] Jo, G. et al. Science 325, 1521–1524 (2009).
[2] Friedenauer, A., et al. Nature Phys. 4, 757–761 (2008)
[3] Kim, K. et al. Nature 465, 590–593 (2010).
[4] V. E. Manucharyan, et al. Science 326, 113 (2009).
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Presenters
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Quentin Ficheux
University of Maryland, College Park, Université Lyon, ENS de Lyon, Université Claude Bernard, CNRS, Laboratoire de Physique,F-69342 Lyon, France
Authors
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Quentin Ficheux
University of Maryland, College Park, Université Lyon, ENS de Lyon, Université Claude Bernard, CNRS, Laboratoire de Physique,F-69342 Lyon, France
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Aaron Somoroff
Physics, Univ of Maryland-College Park, University of Maryland, College Park, University of Maryland - College Park
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Nitish Jitendrakumar Mehta
University of Maryland, College Park
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Roman Kuzmin
University of Maryland, College Park
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Ivar Martin
Material Science Division, Argonne National Laboratory, Argonne National Laboratory, Argonne Natl Lab
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Maxim G Vavilov
University of Wisconsin-Madison, Department of Physics, University of Wisconsin - Madison, University of Wisconsin - Madison
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Vladimir Manucharyan
Physics, Univ of Maryland-College Park, University of Maryland, College Park, University of Maryland - College Park, University of Maryland