Dispersion Relations in Two- and Three-Dimensional Quantum Systems

Fuente: arXiv
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Main Authors: Bilokon, Valeriia, Bilokon, Elvira, Lukin, Illya, Sotnikov, Andrii, Bondar, Denys
Format: Preprint
Published: 2025
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author Bilokon, Valeriia
Bilokon, Elvira
Lukin, Illya
Sotnikov, Andrii
Bondar, Denys
author_facet Bilokon, Valeriia
Bilokon, Elvira
Lukin, Illya
Sotnikov, Andrii
Bondar, Denys
contents Extracting momentum-resolved excitation spectra in strongly correlated quantum systems remains a major challenge, especially beyond one spatial dimension. We present an efficient tensor-network approach to compute dispersion relations via imaginary-time evolution within the infinite projected entangled-pair states (iPEPS) framework. Benchmarking on the transverse-field Ising model, the method successfully captures dispersion relations in both paramagnetic and ferromagnetic phases for two- and three-dimensional lattices, achieving strong agreement with series expansion methods, where these are applicable. Crucially, this work presents the first demonstration of dispersion relation calculations for three-dimensional quantum lattice models - a long-standing computational challenge that opens entirely new research frontiers. The method demonstrates remarkable efficiency, requiring only modest computational resources while maintaining high accuracy across wide parameter ranges. Its broad applicability makes it a powerful tool for quantum simulation, photonic material design, and quantum information platforms requiring precise momentum-resolved spectra.
format Preprint
id arxiv_https___arxiv_org_abs_2509_15483
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Dispersion Relations in Two- and Three-Dimensional Quantum Systems
Bilokon, Valeriia
Bilokon, Elvira
Lukin, Illya
Sotnikov, Andrii
Bondar, Denys
Quantum Physics
Strongly Correlated Electrons
Extracting momentum-resolved excitation spectra in strongly correlated quantum systems remains a major challenge, especially beyond one spatial dimension. We present an efficient tensor-network approach to compute dispersion relations via imaginary-time evolution within the infinite projected entangled-pair states (iPEPS) framework. Benchmarking on the transverse-field Ising model, the method successfully captures dispersion relations in both paramagnetic and ferromagnetic phases for two- and three-dimensional lattices, achieving strong agreement with series expansion methods, where these are applicable. Crucially, this work presents the first demonstration of dispersion relation calculations for three-dimensional quantum lattice models - a long-standing computational challenge that opens entirely new research frontiers. The method demonstrates remarkable efficiency, requiring only modest computational resources while maintaining high accuracy across wide parameter ranges. Its broad applicability makes it a powerful tool for quantum simulation, photonic material design, and quantum information platforms requiring precise momentum-resolved spectra.
title Dispersion Relations in Two- and Three-Dimensional Quantum Systems
topic Quantum Physics
Strongly Correlated Electrons
url https://arxiv.org/abs/2509.15483