Time evolution of the quantum Ising model in two dimensions using Tree Tensor Networks

Fuente: arXiv
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Main Authors: Krinitsin, Wladislaw, Tausendpfund, Niklas, Heyl, Markus, Rizzi, Matteo, Schmitt, Markus
Format: Preprint
Published: 2025
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author Krinitsin, Wladislaw
Tausendpfund, Niklas
Heyl, Markus
Rizzi, Matteo
Schmitt, Markus
author_facet Krinitsin, Wladislaw
Tausendpfund, Niklas
Heyl, Markus
Rizzi, Matteo
Schmitt, Markus
contents The numerical simulation of two-dimensional quantum many-body systems away from equilibrium constitutes a major challenge for all known computational methods. We investigate the utility of Tree Tensor Network (TTN) states to solve the dynamics of the quantum Ising model in two dimensions. Within the perturbative regime of small transverse fields, TTNs faithfully reproduce analytically known, but non-trivial and physically interesting results, for lattices up to $16 \times 16$ sites. Limitations of the method related to the rapid growth of entanglement entropy are explored within more general, paradigmatic quench settings. We provide and discuss comprehensive benchmarks regarding the benefit of \emph{GPU} acceleration and the impact of using local operator sums on the performance.
format Preprint
id arxiv_https___arxiv_org_abs_2505_07612
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Time evolution of the quantum Ising model in two dimensions using Tree Tensor Networks
Krinitsin, Wladislaw
Tausendpfund, Niklas
Heyl, Markus
Rizzi, Matteo
Schmitt, Markus
Quantum Physics
The numerical simulation of two-dimensional quantum many-body systems away from equilibrium constitutes a major challenge for all known computational methods. We investigate the utility of Tree Tensor Network (TTN) states to solve the dynamics of the quantum Ising model in two dimensions. Within the perturbative regime of small transverse fields, TTNs faithfully reproduce analytically known, but non-trivial and physically interesting results, for lattices up to $16 \times 16$ sites. Limitations of the method related to the rapid growth of entanglement entropy are explored within more general, paradigmatic quench settings. We provide and discuss comprehensive benchmarks regarding the benefit of \emph{GPU} acceleration and the impact of using local operator sums on the performance.
title Time evolution of the quantum Ising model in two dimensions using Tree Tensor Networks
topic Quantum Physics
url https://arxiv.org/abs/2505.07612