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Quantum simulations with ultracold atoms in optical lattices

Quantum simulation, a subdiscipline of quantum computation, can provide valuable insight into difficult quantum problems in physics or chemistry. Ultracold atoms in optical lattices represent an ideal platform for simulations of quantum many-body problems. Within this setting, quantum gas microscope... Full description

Journal Title: Science Sep 8, 2017, Vol.357(6355), pp.995-1001
Main Author: Gross, Christian
Other Authors: Bloch, Immanuel
Format: Electronic Article Electronic Article
Language: English
Subjects:
ID: ISSN: 00368075 ; E-ISSN: 10959203 ; DOI: 10.1126/science.aal3837
Link: http://search.proquest.com/docview/1975002794/?pq-origsite=primo
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title: Quantum simulations with ultracold atoms in optical lattices
format: Article
creator:
  • Gross, Christian
  • Bloch, Immanuel
subjects:
  • Simulators
  • Optical Lattices
  • Microscopes
  • Magnetism
  • Many Body Problem
  • Microscopes
  • Physics
  • Supercomputers
  • Magnetism
  • Computer Simulation
ispartof: Science, Sep 8, 2017, Vol.357(6355), pp.995-1001
description: Quantum simulation, a subdiscipline of quantum computation, can provide valuable insight into difficult quantum problems in physics or chemistry. Ultracold atoms in optical lattices represent an ideal platform for simulations of quantum many-body problems. Within this setting, quantum gas microscopes enable single atom observation and manipulation in large samples. Ultracold atom-based quantum simulators have already been used to probe quantum magnetism, to realize and detect topological quantum matter, and to study quantum systems with controlled long-range interactions. Experiments on many-body systems out of equilibrium have also provided results in regimes unavailable to the most advanced supercomputers. We review recent experimental progress in this field and comment on future directions.
language: eng
source:
identifier: ISSN: 00368075 ; E-ISSN: 10959203 ; DOI: 10.1126/science.aal3837
fulltext: no_fulltext
issn:
  • 00368075
  • 0036-8075
  • 10959203
  • 1095-9203
url: Link


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subjectSimulators ; Optical Lattices ; Microscopes ; Magnetism ; Many Body Problem ; Microscopes ; Physics ; Supercomputers ; Magnetism ; Computer Simulation
descriptionQuantum simulation, a subdiscipline of quantum computation, can provide valuable insight into difficult quantum problems in physics or chemistry. Ultracold atoms in optical lattices represent an ideal platform for simulations of quantum many-body problems. Within this setting, quantum gas microscopes enable single atom observation and manipulation in large samples. Ultracold atom-based quantum simulators have already been used to probe quantum magnetism, to realize and detect topological quantum matter, and to study quantum systems with controlled long-range interactions. Experiments on many-body systems out of equilibrium have also provided results in regimes unavailable to the most advanced supercomputers. We review recent experimental progress in this field and comment on future directions.
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abstractQuantum simulation, a subdiscipline of quantum computation, can provide valuable insight into difficult quantum problems in physics or chemistry. Ultracold atoms in optical lattices represent an ideal platform for simulations of quantum many-body problems. Within this setting, quantum gas microscopes enable single atom observation and manipulation in large samples. Ultracold atom-based quantum simulators have already been used to probe quantum magnetism, to realize and detect topological quantum matter, and to study quantum systems with controlled long-range interactions. Experiments on many-body systems out of equilibrium have also provided results in regimes unavailable to the most advanced supercomputers. We review recent experimental progress in this field and comment on future directions.
copWashington
pubThe American Association for the Advancement of Science
doi10.1126/science.aal3837
urlhttp://search.proquest.com/docview/1975002794/
date2017-09-08