English

Trotter transition in BCS pairing dynamics

Quantum Physics 2026-03-13 v2 Superconductivity Chaotic Dynamics

Abstract

We study universal aspects of thermalization induced by Trotterization, a procedure routinely used in gate-based quantum computation. We use the reduced-BCS model -- quantum integrable with a classically integrable mean-field limit -- where the effects of Trotter chaos are expected to be particularly stark. The resulting Trotterized chaotic dynamics is characterized by its Lyapunov spectrum and rescaled Kolmogorov-Sinai entropy. The chaos quantifiers depend on the Trotterization time step τ\tau. We observe a Trotter transition at a finite step value τcN\tau_c \approx \sqrt{N}. While the dynamics is weakly chaotic for time steps ττc\tau \ll \tau_c, the regime of large Trotterization steps is characterized by short temporal correlations. We derive two different scaling laws for the two different regimes by numerically fitting the maximum Lyapunov exponent data. The scaling law of the large τ\tau limit agrees well with the one derived from the kicked top map. Beyond its relevance to current quantum computers, our work opens new directions -- such as probing observables like the Loschmidt echo, which lie beyond standard mean-field description -- across the Trotter transition we uncover.

Keywords

Cite

@article{arxiv.2506.08657,
  title  = {Trotter transition in BCS pairing dynamics},
  author = {Aniket Patra and Emil A. Yuzbashyan and Boris L. Altshuler and Sergej Flach},
  journal= {arXiv preprint arXiv:2506.08657},
  year   = {2026}
}

Comments

17 pages, 13 figures; revised abstract and introduction; added references; expanded explanations; improved figures with larger legends

R2 v1 2026-07-01T03:08:51.175Z