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Identifying Universal Spin Excitations in Spin-1/2 Kagome Quantum Spin Liquid Materials

Strongly Correlated Electrons 2025-04-10 v1

Abstract

A quantum spin liquid (QSL) is an exotic quantum state of matter characterized by fluctuating spins which may exhibit long-range entanglement. Among the possible host candidates for a QSL ground state, the SS=1/2 kagome lattice antiferromagnet is particularly promising. Using high resolution inelastic neutron scattering measurements on Zn-barlowite (Znx_\mathrm{x}Cu4x_\mathrm{4-x}(OD)6_\mathrm{6}FBr, x0.80x\simeq 0.80), we measure a spin excitation spectrum consistent with a QSL ground state. Continuum scattering above \sim1 meV matches that of herbertsmithite (Znx_\mathrm{x}Cu4x_\mathrm{4-x}(OD)6_6Cl2_2, x0.85x\simeq 0.85), another prominent kagome QSL material, indicating universal spinon excitations. A detailed analysis of the spin-spin correlations, compared with density matrix renormalization group calculations, further indicate a QSL ground state for the physically relevant Hamiltonian parameters. The measured spectra in Zn-barlowite are consistent with gapped behavior with a gap size Δ=1.1(2)\Delta = 1.1(2) meV. Comparison with a simple pair correlation model allows us to clearly distinguish intrinsic kagome correlations from impurity-induced correlations. Our results clarify the behavior that is universal within this important family of QSL candidate materials.

Keywords

Cite

@article{arxiv.2504.06491,
  title  = {Identifying Universal Spin Excitations in Spin-1/2 Kagome Quantum Spin Liquid Materials},
  author = {Aaron T. Breidenbach and Arthur C. Campello and Jiajia Wen and Hong-Chen Jiang and Daniel M. Pajerowski and Rebecca W. Smaha and Young S. Lee},
  journal= {arXiv preprint arXiv:2504.06491},
  year   = {2025}
}
R2 v1 2026-06-28T22:51:41.388Z