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Non-Abelian statistics in light scattering processes across interacting Haldane chains

Strongly Correlated Electrons 2022-06-08 v1 Materials Science

Abstract

The S=1S=1 Haldane state is constructed from a product of local singlet dimers in the bulk and topological states at the edges of a chain. It is a fundamental representative of topological quantum matter. Its well-known representative, the quasi-one-dimensional SrNi2_2V2_2O8_8 shows both conventional as well as unconventional magnetic Raman scattering. The former is observed as one- and two-triplet excitations with small linewidths and energies corresponding to the Haldane gap ΔH\Delta_H and the exchange coupling JcJ_c along the chain, respectively. Well-defined magnetic quasiparticles are assumed to be stabilized by interchain interactions and uniaxial single-ion anisotropy. Unconventional scattering exists as broad continua of scattering with an intensity I(T)I(T) that shows a mixed bosonic / fermionic statistic. Such a mixed statistic has also been observed in Kitaev spin liquids and could point to a non-Abelian symmetry. As the ground state in the bulk of SrNi2_2V2_2O8_8 is topologically trivial, we suggest its fractionalization to be due to light-induced interchain exchange processes. These processes are supposed to be enhanced due to a proximity to an Ising ordered state with a quantum critical point. A comparison with SrCo2_2V2_2O8_8, the S=1/2S=1/2 analogue to our title compound, supports these statements.

Keywords

Cite

@article{arxiv.2106.08651,
  title  = {Non-Abelian statistics in light scattering processes across interacting Haldane chains},
  author = {Vladimir Gnezdilov and Vladimir Kurnosov and Yurii Pashkevich and Anup Kumar Bera and A. T. M. Nazmul Islam and Bella Lake and Bodo Lobbenmeier and Dirk Wulferding and Peter Lemmens},
  journal= {arXiv preprint arXiv:2106.08651},
  year   = {2022}
}

Comments

3 figures, 1 table

R2 v1 2026-06-24T03:15:29.991Z