Realization of a Quantum Integer-Spin Chain with Controllable Interactions

The physics of interacting integer-spin chains has been a topic of intense theoretical interest, particularly in the context of symmetry-protected topological phases. However, there has not been a controllable model system to study this physics experimentally. We demonstrate how spin-dependent force...

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Main Authors: C. Senko, P. Richerme, J. Smith, A. Lee, I. Cohen, A. Retzker, C. Monroe
Format: Article
Language:English
Published: American Physical Society 2015-06-01
Series:Physical Review X
Online Access:http://doi.org/10.1103/PhysRevX.5.021026
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spelling doaj-a288e3f70e514ba0b9885049c7d706cb2020-11-24T23:29:01ZengAmerican Physical SocietyPhysical Review X2160-33082015-06-015202102610.1103/PhysRevX.5.021026Realization of a Quantum Integer-Spin Chain with Controllable InteractionsC. SenkoP. RichermeJ. SmithA. LeeI. CohenA. RetzkerC. MonroeThe physics of interacting integer-spin chains has been a topic of intense theoretical interest, particularly in the context of symmetry-protected topological phases. However, there has not been a controllable model system to study this physics experimentally. We demonstrate how spin-dependent forces on trapped ions can be used to engineer an effective system of interacting spin-1 particles. Our system evolves coherently under an applied spin-1 XY Hamiltonian with tunable, long-range couplings, and all three quantum levels at each site participate in the dynamics. We observe the time evolution of the system and verify its coherence by entangling a pair of effective three-level particles (“qutrits”) with 86% fidelity. By adiabatically ramping a global field, we produce ground states of the XY model, and we demonstrate an instance where the ground state cannot be created without breaking the same symmetries that protect the topological Haldane phase. This experimental platform enables future studies of symmetry-protected order in spin-1 systems and their use in quantum applications.http://doi.org/10.1103/PhysRevX.5.021026
collection DOAJ
language English
format Article
sources DOAJ
author C. Senko
P. Richerme
J. Smith
A. Lee
I. Cohen
A. Retzker
C. Monroe
spellingShingle C. Senko
P. Richerme
J. Smith
A. Lee
I. Cohen
A. Retzker
C. Monroe
Realization of a Quantum Integer-Spin Chain with Controllable Interactions
Physical Review X
author_facet C. Senko
P. Richerme
J. Smith
A. Lee
I. Cohen
A. Retzker
C. Monroe
author_sort C. Senko
title Realization of a Quantum Integer-Spin Chain with Controllable Interactions
title_short Realization of a Quantum Integer-Spin Chain with Controllable Interactions
title_full Realization of a Quantum Integer-Spin Chain with Controllable Interactions
title_fullStr Realization of a Quantum Integer-Spin Chain with Controllable Interactions
title_full_unstemmed Realization of a Quantum Integer-Spin Chain with Controllable Interactions
title_sort realization of a quantum integer-spin chain with controllable interactions
publisher American Physical Society
series Physical Review X
issn 2160-3308
publishDate 2015-06-01
description The physics of interacting integer-spin chains has been a topic of intense theoretical interest, particularly in the context of symmetry-protected topological phases. However, there has not been a controllable model system to study this physics experimentally. We demonstrate how spin-dependent forces on trapped ions can be used to engineer an effective system of interacting spin-1 particles. Our system evolves coherently under an applied spin-1 XY Hamiltonian with tunable, long-range couplings, and all three quantum levels at each site participate in the dynamics. We observe the time evolution of the system and verify its coherence by entangling a pair of effective three-level particles (“qutrits”) with 86% fidelity. By adiabatically ramping a global field, we produce ground states of the XY model, and we demonstrate an instance where the ground state cannot be created without breaking the same symmetries that protect the topological Haldane phase. This experimental platform enables future studies of symmetry-protected order in spin-1 systems and their use in quantum applications.
url http://doi.org/10.1103/PhysRevX.5.021026
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