Single-eigenstate test of eigenstate thermalization hypothesis via perturbed eigenstate quench
Abstract
We propose and numerically validate an efficient single-eigenstate diagnostic for the eigenstate thermalization hypothesis (ETH) based on a perturbed eigenstate quench protocol. By introducing a weak random perturbation to an energy eigenstate to break its stationarity, we characterize the time-averaged subsystem evolution speed as a function of the subsystem-to-total system size ratio. The diagnostic relies on a robust qualitative distinction: eigenstates satisfying ETH exhibit an S-shaped curve with a clear inflection point near half the system size, while ETH-violating eigenstates display a convex J-shaped profile. We benchmark the criterion across paradigmatic one-dimensional spin chains covering chaotic, integrable, many-body localized, and quantum many-body scar regimes, obtaining full agreement with established thermalization phenomenology. Our method circumvents the need for explicit thermal ensemble construction, providing a robust, experimentally feasible probe of eigenstate thermalization at the single-eigenstate level.
Cite
@article{arxiv.2608.04696,
title = {Single-eigenstate test of eigenstate thermalization hypothesis via perturbed eigenstate quench},
author = {Zhouhao Guo and Jiaju Zhang},
journal= {arXiv preprint arXiv:2608.04696},
year = {2026}
}
Comments
6 pages, 3 figures