English

Emergent Replica Clock Unifies Many-Body Localization and Thermalization

Disordered Systems and Neural Networks 2026-08-05 v1

Abstract

Many-body localization (MBL) and eigenstate thermalization (ETH) are traditionally distinguished by a collection of separate diagnostics, not by a single order parameter. We show that replication and folding of isolated unitary dynamics generate a complex statistical mechanics of forward--backward history pairings and, in a closed cyclic infrared sector, an emergent clock rxZtr_x\in\mathbb Z_t. Its correlator has three distinct asymptotics: exponential decay in MBL, scale-free decay at criticality, and long-range locking in the thermal phase. A controlled ll-bit reduction makes the clock action quasi-local, while its inverse correlation length obeys ξpair1=κel=lnρ0/ρq\xi_{\rm pair}^{-1}=\kappa_{\rm el}=\ln|\rho_0/\rho_q|, unifying history coherence, the defect line tension, and the transfer spectrum. Replica order supplies a second, discrete coordinate---the first order at which a hidden dynamical invariant becomes visible---and can distinguish localized dynamics that share the same spatial correlation length.

Cite

@article{arxiv.2608.04762,
  title  = {Emergent Replica Clock Unifies Many-Body Localization and Thermalization},
  author = {Tong Liu},
  journal= {arXiv preprint arXiv:2608.04762},
  year   = {2026}
}

Comments

5 pages, 3 figures