English

Characterizing complexity of many-body quantum dynamics by higher-order eigenstate thermalization

Statistical Mechanics 2020-05-06 v1 Quantum Gases High Energy Physics - Theory Quantum Physics

Abstract

Complexity of dynamics is at the core of quantum many-body chaos and exhibits a hierarchical feature: higher-order complexity implies more chaotic dynamics. Conventional ergodicity in thermalization processes is a manifestation of the lowest order complexity, which is represented by the eigenstate thermalization hypothesis (ETH) stating that individual energy eigenstates are thermal. Here, we propose a higher-order generalization of the ETH, named the k k -ETH (k=1,2, k=1,2,\dots ), to quantify higher-order complexity of quantum many-body dynamics at the level of individual energy eigenstates, where the lowest order ETH (1-ETH) is the conventional ETH. As a non-trivial contribution of the higher-order ETH, we show that the k k -ETH with k2 k\geq 2 implies a universal behavior of the k k th Renyi entanglement entropy of individual energy eigenstates. In particular, the Page correction of the entanglement entropy originates from the higher-order ETH, while as is well known, the volume law can be accounted for by the 1-ETH. We numerically verify that the 2-ETH approximately holds for a nonintegrable system, but does not hold in the integrable case. To further investigate the information-theoretic feature behind the k k -ETH, we introduce a concept named a partial unitary k k -design (PU k k -design), which is an approximation of the Haar random unitary up to the k k th moment, where partial means that only a limited number of observables are accessible. The k k -ETH is a special case of a PU k k -design for the ensemble of Hamiltonian dynamics with random-time sampling. In addition, we discuss the relationship between the higher-order ETH and information scrambling quantified by out-of-time-ordered correlators. Our framework provides a unified view on thermalization, entanglement entropy, and unitary k k -designs, leading to deeper characterization of higher-order quantum complexity.

Keywords

Cite

@article{arxiv.1911.10755,
  title  = {Characterizing complexity of many-body quantum dynamics by higher-order eigenstate thermalization},
  author = {Kazuya Kaneko and Eiki Iyoda and Takahiro Sagawa},
  journal= {arXiv preprint arXiv:1911.10755},
  year   = {2020}
}
R2 v1 2026-06-23T12:25:59.705Z