English

Detection of anyon braiding through pump-probe spectroscopy

Strongly Correlated Electrons 2026-01-22 v2

Abstract

We show that the braiding of anyons in a quantum spin liquid leaves a distinct dynamical signature in the nonlinear pump-probe response. Using a combination of exact diagonalization and matrix product state techniques, we study the nonlinear pump-probe response of the toric code in a magnetic field, a model which hosts mobile electric ee and magnetic mm anyonic excitations. While the linear response signal oscillates and decays with time like t1.3\sim t^{-1.3}, the amplitude of the nonlinear signal for χXZZ(3)\chi^{(3)}_{XZZ} features a linear-in-time enhancement at early times. The comparison between χXZZ(3)\chi^{(3)}_{XZZ}, which involves the non-trivial braiding of ee and mm anyons, and χXXX(3)\chi^{(3)}_{XXX} that involves the trivial braiding of the same types of anyons, serves to distinguish the braiding statistics of anyons. We support our analysis by constructing a hard-core anyon model with statistical gauge fields to develop further insights into the time dependence of the pump-probe response. Pump-probe spectroscopy provides a distinctive new probe of quantum spin liquid states, beyond the inconclusive broad features observed in single spin flip inelastic neutron scattering.

Keywords

Cite

@article{arxiv.2503.22792,
  title  = {Detection of anyon braiding through pump-probe spectroscopy},
  author = {Xu Yang and Ryan Buechele and Nandini Trivedi},
  journal= {arXiv preprint arXiv:2503.22792},
  year   = {2026}
}

Comments

17 pages, 11 figures. References updated; discussion in "Time Scales" section expanded