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Over the recent years, the relatively young field of quantum simulation of lattice gauge theories - aiming at implementing simulators of gauge theories with quantum platforms, has gone through a rapid development process.
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2013
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2014
Cited alongside, same era.
E. Zohar and M. Burrello, “Formulation of lattice gauge theories for quantum simulations,” Physical Review D
J. R. Stryker, “Oracles for gauss’s law on digital quantum computers,” Phys. Rev. A
2019
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S. Aoki, Y. Aoki, D. Bečirević, T. Blum, G. Colangelo, S. Collins, M. Della Morte, P. Dimopoulos, S. Dürr, H. Fukaya, M. Golterman, S. Gottlieb, R. Gupta, S. Hashimoto, U. M. Heller, G. Herdoiza, R. Horsley, A. Jüttner, T. Kaneko, C.-J. D. Lin, E. Lunghi, R. Mawhinney, A. Nicholson, T. Onogi, C. Pena, A. Portelli, A. Ramos, S. R. Sharpe, J. N. Simone, S. Simula, R. Sommer, R. Van de Water, A. Vladikas, U. Wenger, and H. Wittig, “Flag review 2019,” The European Physical Journal C
2020
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2020
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2015
Cited alongside, same era.
E. Zohar, J. Cirac, and B. Reznik, “Quantum simulations of lattice gauge theories using ultracold atoms in optical lattices,” Reports on Progress in Physics
2016
Cited alongside, same era.
M. Dalmonte and S. Montangero, “Lattice gauge theory simulations in the quantum information era,” Contemporary Physics
2016
Cited alongside, same era.
E. A. Martinez, C. A. Muschik, P. Schindler, D. Nigg, A. Erhard, M. Heyl, P. Hauke, M. Dalmonte, T. Monz, P. Zoller, and R. Blatt, “Real-time dynamics of lattice gauge theories with a few-qubit quantum computer,” Nature
2016
Cited alongside, same era.
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2017
Cited alongside, same era.
E. Zohar, A. Farace, B. Reznik, and J. I. Cirac, “Digital Quantum Simulation of Z 2 Lattice Gauge Theories with Dynamical Fermionic Matter,” Physical Review Letters
2017
Cited alongside, same era.
E. Zohar, A. Farace, B. Reznik, and J. Cirac, “Digital lattice gauge theories,” Physical Review A
2017
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2017
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2020
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M. C. Bañuls and K. Cichy, “Review on novel methods for lattice gauge theories,” Reports on Progress in Physics
2020
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2020
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B. Yang, H. Sun, R. Ott, H.-Y. Wang, T. V. Zache, J. C. Halimeh, Z.-S. Yuan, P. Hauke, and J.-W. Pan, “Observation of gauge invariance in a 71-site bose-hubbard quantum simulator,” Nature
2020
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Z. Davoudi, M. Hafezi, C. Monroe, G. Pagano, A. Seif, and A. Shaw, “Towards analog quantum simulations of lattice gauge theories with trapped ions,” Phys. Rev. Research
2020
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2020
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V. Kasper, G. Juzeliūnas, M. Lewenstein, F. Jendrzejewski, and E. Zohar, “From the jaynes–cummings model to non-abelian gauge theories: a guided tour for the quantum engineer,” New Journal of Physics
2020
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2020
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2020
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F. M. Surace, P. P. Mazza, G. Giudici, A. Lerose, A. Gambassi, and M. Dalmonte, “Lattice gauge theories and string dynamics in rydberg atom quantum simulators,” Phys. Rev. X
2020
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N. Klco, M. J. Savage, and J. R. Stryker, “Su(2) non-abelian gauge field theory in one dimension on digital quantum computers,” Phys. Rev. D
2020
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I. Raychowdhury and J. R. Stryker, “Loop, string, and hadron dynamics in su(2) hamiltonian lattice gauge theories,” Phys. Rev. D
2020
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D. B. Kaplan and J. R. Stryker, “Gauss’s law, duality, and the hamiltonian formulation of u(1) lattice gauge theory,” Phys. Rev. D
2020
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A. Celi, B. Vermersch, O. Viyuela, H. Pichler, M. D. Lukin, and P. Zoller, “Emerging two-dimensional gauge theories in rydberg configurable arrays,” Phys. Rev. X
2020
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J. Bender and E. Zohar, “Gauge redundancy-free formulation of compact qed with dynamical matter for quantum and classical computations,” Phys. Rev. D
2020
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2020
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2020
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2020
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A. Ciavarella, N. Klco, and M. J. Savage, “Trailhead for quantum simulation of su(3) yang-mills lattice gauge theory in the local multiplet basis,” Phys. Rev. D
2021
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