TY - JOUR
T1 - Simulating lattice gauge theories within quantum technologies
AU - Bañuls, Mari Carmen
AU - Blatt, Rainer
AU - Catani, Jacopo
AU - Celi, Alessio
AU - Cirac, Juan Ignacio
AU - Dalmonte, Marcello
AU - Fallani, Leonardo
AU - Jansen, Karl
AU - Lewenstein, Maciej
AU - Montangero, Simone
AU - Muschik, Christine A.
AU - Reznik, Benni
AU - Rico, Enrique
AU - Tagliacozzo, Luca
AU - Van Acoleyen, Karel
AU - Verstraete, Frank
AU - Wiese, Uwe Jens
AU - Wingate, Matthew
AU - Zakrzewski, Jakub
AU - Zoller, Peter
N1 - Publisher Copyright:
© 2020, The Author(s).
PY - 2020/8/1
Y1 - 2020/8/1
N2 - Abstract: Lattice gauge theories, which originated from particle physics in the context of Quantum Chromodynamics (QCD), provide an important intellectual stimulus to further develop quantum information technologies. While one long-term goal is the reliable quantum simulation of currently intractable aspects of QCD itself, lattice gauge theories also play an important role in condensed matter physics and in quantum information science. In this way, lattice gauge theories provide both motivation and a framework for interdisciplinary research towards the development of special purpose digital and analog quantum simulators, and ultimately of scalable universal quantum computers. In this manuscript, recent results and new tools from a quantum science approach to study lattice gauge theories are reviewed. Two new complementary approaches are discussed: first, tensor network methods are presented – a classical simulation approach – applied to the study of lattice gauge theories together with some results on Abelian and non-Abelian lattice gauge theories. Then, recent proposals for the implementation of lattice gauge theory quantum simulators in different quantum hardware are reported, e.g., trapped ions, Rydberg atoms, and superconducting circuits. Finally, the first proof-of-principle trapped ions experimental quantum simulations of the Schwinger model are reviewed. Graphical abstract: [Figure not available: see fulltext.].
AB - Abstract: Lattice gauge theories, which originated from particle physics in the context of Quantum Chromodynamics (QCD), provide an important intellectual stimulus to further develop quantum information technologies. While one long-term goal is the reliable quantum simulation of currently intractable aspects of QCD itself, lattice gauge theories also play an important role in condensed matter physics and in quantum information science. In this way, lattice gauge theories provide both motivation and a framework for interdisciplinary research towards the development of special purpose digital and analog quantum simulators, and ultimately of scalable universal quantum computers. In this manuscript, recent results and new tools from a quantum science approach to study lattice gauge theories are reviewed. Two new complementary approaches are discussed: first, tensor network methods are presented – a classical simulation approach – applied to the study of lattice gauge theories together with some results on Abelian and non-Abelian lattice gauge theories. Then, recent proposals for the implementation of lattice gauge theory quantum simulators in different quantum hardware are reported, e.g., trapped ions, Rydberg atoms, and superconducting circuits. Finally, the first proof-of-principle trapped ions experimental quantum simulations of the Schwinger model are reviewed. Graphical abstract: [Figure not available: see fulltext.].
KW - Quantum Information
UR - http://www.scopus.com/inward/record.url?scp=85088946824&partnerID=8YFLogxK
U2 - 10.1140/epjd/e2020-100571-8
DO - 10.1140/epjd/e2020-100571-8
M3 - Article
AN - SCOPUS:85088946824
SN - 1434-6060
VL - 74
JO - European Physical Journal D
JF - European Physical Journal D
IS - 8
M1 - 165
ER -