Dynamical dimer structure factor of the triangular $S=1/2$ Heisenberg antiferromagnet
Abstract
The dynamical dimer structure factor is an observable probing spin-singlet excitations of quantum magnets distinct from those commonly studied by the spin structure factor. We report the dimer response for the extended spin- antiferromagnetic Heisenberg model on the triangular lattice using large-scale GPU-accelerated matrix-product-state simulations. We investigate the ordered phases with coplanar, collinear stripe, and tetrahedral spin order, as well as candidate quantum spin-liquid (QSL) regimes, comprising an expected gapless Dirac QSL and a chiral QSL at finite spin-scalar-chirality coupling. In the ordered phases, we find low-energy modes below the onset of the two-magnon continuum illustrating avoided quasiparticle decay. Within the candidate gapless QSL, we observe absolute dispersion minima at momenta of half the Brillouin zone corners, , in agreement with field-theory predictions that singlet monopole excitations of the Dirac spin liquid become gapless at these points. Thus, the high-resolution dynamical dimer response provides support for a Dirac QSL with singlet monopole excitations.
Cite
@article{arxiv.2604.24868,
title = {Dynamical dimer structure factor of the triangular $S=1/2$ Heisenberg antiferromagnet},
author = {Markus Drescher and Laurens Vanderstraeten and Roderich Moessner and Frank Pollmann and Johannes Knolle},
journal= {arXiv preprint arXiv:2604.24868},
year = {2026}
}
Comments
5 + 1 + 8 pages, 3 + 0 + 6 figures