English

Scaling of many-body localization transitions: Quantum dynamics in Fock space and real space

Disordered Systems and Neural Networks 2025-08-19 v1

Abstract

Many-body-localization (MBL) transitions are studied in a family of single-spin-flip spin-12\frac12 models, including the one-dimensional (1D) chain with nearest-neighbor interactions, the quantum dot (QD) model with all-to-all pair interactions, and the quantum random energy model (QREM). We investigate the generalized imbalance that characterizes propagation in Fock space out of an initial basis state and, at the same time, can be efficiently probed by real-space measurements. For all models considered, the average imbalance and its quantum and mesoscopic fluctuations provide excellent indicators for the position of the MBL transition Wc(n)W_c(n), where nn is the number of spins. Combining these findings with earlier results on level statistics, we determine phase diagrams of the MBL transitions in the nn-WW plane. Our results provide evidence for a direct transition between the ergodic and MBL phases for each of the models, without any intermediate phase. For QREM and QD model, Wc(n)W_c(n) grows as a power law of nn (with logarithmic corrections), in agreement with analytical predictions WcQREM(n)n1/2lnnW_c^{\rm QREM}(n) \sim n^{1/2} \ln n and WcQD(n)n3/4ln1/2nW_c^{\rm QD}(n) \gtrsim n^{3/4} \ln^{1/2} n. This growth is in stark contrast to the 1D model, where Wc(n)W_c(n) is essentially independent of nn, consistent with the analytic expectation Wc1D(n)=constW_c^{\rm 1D}(n\to \infty)= {\rm const}. We also determine the scaling of the transition width ΔW(n)/Wc(n)\Delta W (n) / W_c(n) and estimate the system size nn needed to study the asymptotic scaling behavior. While these values of nn are not accessible to exact simulations on a classical computer, they are within the reach of quantum simulators. Our results indicate feasibility of experimental studies of nn-WW phase diagrams and scaling properties of MBL transitions in models of 1D and QD type and in their extensions to other spatial geometry or distance-dependent interactions.

Keywords

Cite

@article{arxiv.2502.16219,
  title  = {Scaling of many-body localization transitions: Quantum dynamics in Fock space and real space},
  author = {Thibault Scoquart and Igor V. Gornyi and Alexander D. Mirlin},
  journal= {arXiv preprint arXiv:2502.16219},
  year   = {2025}
}

Comments

33 pages, 14 figures