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 with mobile electriceand magneticmanyonic 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 and a stronger enhancement with at later times. The comparison between , which involves nontrivial braiding ofeandmanyons, and that involves trivial braiding of the same types of anyons, distinguishes the braiding statistics of anyons. We support our analysis with 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.
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Measurement of the dynamic charge susceptibility near the charge density wave transition in ErTe 3
A charge density wave (CDW) is a phase of matter characterized by a periodic modulation of valence electron density coupled with lattice distortion. Its formation is closely tied to the dynamical charge susceptibility, , which reflects the collective electron dynamics of the material. Despite decades of study, near a CDW transition has never been measured at nonzero momentum, , with meV energy resolution. Here, we investigate the canonical CDW transition in ErTe using momentum-resolved electron energy loss spectroscopy, a technique uniquely sensitive to valence band charge excitations. Unlike phonons, which soften via the Kohn anomaly, we find the electronic excitations exhibit purely relaxational dynamics well described by a diffusive model, with the diffusivity peaking just below the critical temperature, . Additionally, we report for the first time a divergence in the real part of in the static limit ( ), a long-predicted hallmark of CDWs. Unexpectedly, this divergence occurs as , with only a weak thermodynamic signature at . Our study necessitates a reexamination of the traditional description of CDW formation in quantum materials.
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- Award ID(s):
- 2225920
- PAR ID:
- 10674107
- Publisher / Repository:
- Proceedings of the national Academy of Science (PNAS)
- Date Published:
- Journal Name:
- Proceedings of the National Academy of Sciences
- Volume:
- 122
- Issue:
- 25
- ISSN:
- 0027-8424
- Page Range / eLocation ID:
- e2424430122
- Format(s):
- Medium: X
- Sponsoring Org:
- National Science Foundation
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