English

Static heterogeneity generates apparent universality in first-passage bursty dynamics

Other Condensed Matter 2026-04-17 v1

Abstract

Processes involving bursts of activity separated by quiescent periods occur across diverse systems and scales. In human dynamics, these phenomena have been described by power-law inter-event time distributions, P(t)tαP(t)\sim t^{-\alpha}, with putative universality classes α=1\alpha=1 and α=32\alpha=\frac{3}{2} having been proposed. Whether the observed α=1\alpha = 1 scaling reflects intrinsic scale-free dynamics or instead emerges from heterogeneous underlying rates has been debated at length. We address this question in a canonical physical system for first-passage dynamics: two-dimensional molecular diffusion detected by the tip of a scanning tunnelling microscope. The resulting inter-pulse time distributions exhibit the same apparent truncated power-law form reported for human activities such as email communication, web browsing, and library loans. Maximum-likelihood estimation and model comparison decisively favor a Kohlrausch-Williams-Watts--tempered power law, P(t)tαexp((t/tc)β)P(t)\propto t^{-\alpha}\exp\left(-(t/t_c)^\beta\right), with α1\alpha \sim 1. Kinetic Monte Carlo simulations reproduce this behavior, showing that the apparent α1\alpha \sim 1 scaling is confined to a finite time window and arises from tip-induced spatial heterogeneity, not scale invariance.

Keywords

Cite

@article{arxiv.2604.15084,
  title  = {Static heterogeneity generates apparent universality in first-passage bursty dynamics},
  author = {Morten Møller and Philipp Rahe and Sadegh Ghaderzadeh and Elena Besley and Philip Moriarty},
  journal= {arXiv preprint arXiv:2604.15084},
  year   = {2026}
}

Comments

34 pages (main, including four figures and four tables); 32 pages (Supplementary Text, including 14 figures and 1 table)

R2 v1 2026-07-01T12:12:46.722Z