Detection of anyon braiding through pump-probe spectroscopy
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 and magnetic anyonic excitations. While the linear response signal oscillates and decays with time like , the amplitude of the nonlinear signal for features a linear-in-time enhancement at early times. The comparison between , which involves the non-trivial braiding of and anyons, and 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