Eigenstate Thermalization and Spectral Imprints of the Hamiltonian in Local Observables

Fuente: arXiv
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Autores principales: Mishra, Shivam, Jisha, C, Prakash, Ravi
Formato: Preprint
Publicado: 2026
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author Mishra, Shivam
Jisha, C
Prakash, Ravi
author_facet Mishra, Shivam
Jisha, C
Prakash, Ravi
contents The Eigenstate Thermalization Hypothesis explains thermalization in isolated quantum systems through the statistical properties of observables in the energy eigenbasis. We investigate the crossover from integrability to chaos in the spin-$1/2$ XXZ chain, establishing a direct correspondence between the spectral correlations of the Hamiltonian and local observables expressed in the energy eigenbasis as a signature of ergodicity breaking. By introducing a local perturbation that drives the system from integrability to chaos, we track the standard ETH indicators and the eigenstate entanglement entropy. We introduce a submatrix-based framework for analyzing local observables in the energy eigenbasis. By extracting real-symmetric blocks along the diagonal of the local observables represented in eigenbasis, we show that these submatrices exhibit both the short-range and long-range spectral features of the Hamiltonian. Remarkably, this correspondence persists even in a partially ergodic regime, indicating that the emergence of chaos is already encoded locally within the observables' matrix structure and that small blocks are sufficient to capture the underlying spectral correlations.
format Preprint
id arxiv_https___arxiv_org_abs_2601_09340
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Eigenstate Thermalization and Spectral Imprints of the Hamiltonian in Local Observables
Mishra, Shivam
Jisha, C
Prakash, Ravi
Quantum Physics
Statistical Mechanics
Chaotic Dynamics
The Eigenstate Thermalization Hypothesis explains thermalization in isolated quantum systems through the statistical properties of observables in the energy eigenbasis. We investigate the crossover from integrability to chaos in the spin-$1/2$ XXZ chain, establishing a direct correspondence between the spectral correlations of the Hamiltonian and local observables expressed in the energy eigenbasis as a signature of ergodicity breaking. By introducing a local perturbation that drives the system from integrability to chaos, we track the standard ETH indicators and the eigenstate entanglement entropy. We introduce a submatrix-based framework for analyzing local observables in the energy eigenbasis. By extracting real-symmetric blocks along the diagonal of the local observables represented in eigenbasis, we show that these submatrices exhibit both the short-range and long-range spectral features of the Hamiltonian. Remarkably, this correspondence persists even in a partially ergodic regime, indicating that the emergence of chaos is already encoded locally within the observables' matrix structure and that small blocks are sufficient to capture the underlying spectral correlations.
title Eigenstate Thermalization and Spectral Imprints of the Hamiltonian in Local Observables
topic Quantum Physics
Statistical Mechanics
Chaotic Dynamics
url https://arxiv.org/abs/2601.09340