Probing Majorana wavefunctions in Kitaev honeycomb spin liquids with second-order two-dimensional spectroscopy
arXiv:2301.11243 · doi:10.1103/PhysRevLett.133.126505
Abstract
Two-dimensional coherent terahertz spectroscopy (2DCS) emerges as a valuable tool to probe the nature, couplings, and lifetimes of excitations in quantum materials. It thus promises to identify unique signatures of spin liquid states in quantum magnets by directly probing properties of their exotic fractionalized excitations. Here, we calculate the second-order 2DCS of the Kitaev honeycomb model and demonstrate that distinct spin liquid fingerprints appear already in this lowest-order nonlinear response when using crossed light polarizations. We further relate the off-diagonal 2DCS peaks to the localized nature of the matter Majorana excitations trapped by flux excitations and show that 2DCS thus directly probes the inverse participation ratio of Majorana wavefunctions. By providing experimentally observable features of spin liquid states in the 2D spectrum, our work can guide future 2DCS experiments on Kitaev magnets.
6 pages, 4 figures; includes Supplementary Material (11 pages, 7 figures)
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Cited by in corpus (8)
- Exploring Two-dimensional Coherent Spectroscopy with Exact Diagonalization: Spinons and Confinement in 1D Quantum Magnets
- Revealing Quadrupolar Excitations with Non-Linear Spectroscopy
- Multidimensional coherent spectroscopy of correlated lattice systems
- Extracting Nonlinear Dynamical Response Functions from Time Evolution
- Signatures of spinon dynamics and phase structure of dipolar-octupolar quantum spin ices in two-dimensional coherent spectroscopy
- Detection of anyon braiding through pump-probe spectroscopy
- Tuning magnetic interactions with nonequilibrium optical phonon populations: a theoretical study
- The Kekulé-Kitaev model: linear and non-linear responses and magnetic field effects