Studying the phase diagram of the three-flavor Schwinger model in the presence of a chemical potential with measurement- and gate-based quantum computing

Fuente: arXiv
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Main Authors: Schuster, Stephan, Kühn, Stefan, Funcke, Lena, Hartung, Tobias, Pleinert, Marc-Oliver, von Zanthier, Joachim, Jansen, Karl
Format: Preprint
Published: 2023
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author Schuster, Stephan
Kühn, Stefan
Funcke, Lena
Hartung, Tobias
Pleinert, Marc-Oliver
von Zanthier, Joachim
Jansen, Karl
author_facet Schuster, Stephan
Kühn, Stefan
Funcke, Lena
Hartung, Tobias
Pleinert, Marc-Oliver
von Zanthier, Joachim
Jansen, Karl
contents We propose an ansatz quantum circuit for the variational quantum eigensolver (VQE), suitable for exploring the phase structure of the multi-flavor Schwinger model in the presence of a chemical potential. Our ansatz is capable of incorporating relevant model symmetries via constrains on the parameters, and can be implemented on circuit-based as well as measurement-based quantum devices. We show via classical simulation of the VQE that our ansatz is able to capture the phase structure of the model, and can approximate the ground state to a high level of accuracy. Moreover, we perform proof-of-principle simulations on superconducting, gate-based quantum hardware. Our results show that our approach is suitable for current gate-based quantum devices, and can be readily implemented on measurement-based quantum devices once available.
format Preprint
id arxiv_https___arxiv_org_abs_2311_14825
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Studying the phase diagram of the three-flavor Schwinger model in the presence of a chemical potential with measurement- and gate-based quantum computing
Schuster, Stephan
Kühn, Stefan
Funcke, Lena
Hartung, Tobias
Pleinert, Marc-Oliver
von Zanthier, Joachim
Jansen, Karl
High Energy Physics - Lattice
Quantum Physics
We propose an ansatz quantum circuit for the variational quantum eigensolver (VQE), suitable for exploring the phase structure of the multi-flavor Schwinger model in the presence of a chemical potential. Our ansatz is capable of incorporating relevant model symmetries via constrains on the parameters, and can be implemented on circuit-based as well as measurement-based quantum devices. We show via classical simulation of the VQE that our ansatz is able to capture the phase structure of the model, and can approximate the ground state to a high level of accuracy. Moreover, we perform proof-of-principle simulations on superconducting, gate-based quantum hardware. Our results show that our approach is suitable for current gate-based quantum devices, and can be readily implemented on measurement-based quantum devices once available.
title Studying the phase diagram of the three-flavor Schwinger model in the presence of a chemical potential with measurement- and gate-based quantum computing
topic High Energy Physics - Lattice
Quantum Physics
url https://arxiv.org/abs/2311.14825