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Giant Magnetocaloric Effect in a Honeycomb Spiral Spin-Liquid Candidate

Strongly Correlated Electrons 2025-08-27 v1 Materials Science

Abstract

Unlike conventional magnetic states, which lack degeneracy, the spiral spin liquid (SSL) fluctuates among degenerate spiral configurations, with ground-state wave vectors forming a continuous contour or surface in reciprocal space. At low temperatures, the field-induced crossover from the polarized ferromagnetic state to the SSL results in a large entropy increase and decalescence, indicating its potential for magnetic cooling. However, magnetic cooling using a SSL has yet to be reported. Here, we investigate the magnetocaloric effect and cooling performance of single-crystal GdZnPO, a spin-7/2 honeycomb-lattice SSL candidate, under a magnetic field HH << HcH_\mathrm{c} (μ0Hc\mu_0H_\mathrm{c} \sim 12 T) applied perpendicular to the honeycomb plane and below the crossover temperature (\sim2 K). For HH \geq HcH_\mathrm{c}, GdZnPO enters a polarized non-degenerate ferromagnetic state. Our results demonstrate that GdZnPO exhibits a giant low-temperature magnetocaloric effect near HcH_\mathrm{c}, surpassing other magnetocaloric materials. This giant magnetocaloric effect is well-explained by the frustrated honeycomb spin model of GdZnPO, suggesting the stability of the SSL below HcH_\mathrm{c} down to very low temperatures. Additionally, its magnetic cooling performance remains robust up to at least 4.5 K, making GdZnPO a promising candidate for magnetic refrigeration down to \sim36 mK through cycling the applied magnetic field within a narrow range.

Keywords

Cite

@article{arxiv.2508.08721,
  title  = {Giant Magnetocaloric Effect in a Honeycomb Spiral Spin-Liquid Candidate},
  author = {Yuqian Zhao and Xun Chen and Zongtang Wan and Zhaohua Ma and Yuesheng Li},
  journal= {arXiv preprint arXiv:2508.08721},
  year   = {2025}
}

Comments

accepted in Advanced Science. Supporting Information is available from the authors