Itinerant and topological excitations in a honeycomb spiral spin liquid candidate

Fuente: arXiv
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Hauptverfasser: Zhao, Yuqian, Yao, Xuping, Chen, Xun, Wan, Zongtang, Ma, Zhaohua, Hong, Xiaochen, Li, Yuesheng
Format: Preprint
Veröffentlicht: 2025
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author Zhao, Yuqian
Yao, Xuping
Chen, Xun
Wan, Zongtang
Ma, Zhaohua
Hong, Xiaochen
Li, Yuesheng
author_facet Zhao, Yuqian
Yao, Xuping
Chen, Xun
Wan, Zongtang
Ma, Zhaohua
Hong, Xiaochen
Li, Yuesheng
contents The frustrated insulating magnet can stabilize a spiral spin liquid, arising from cooperative fluctuations among a subextensively degenerate manifold of spiral configurations, with ground-state wave vectors forming a continuous contour or surface in reciprocal space. The atomic-mixing-free honeycomb antiferromagnet GdZnPO has recently emerged as a promising spiral spin-liquid candidate, hosting nontrivial topological excitations. Despite growing interest, the transport and topological properties of spiral spin liquids remain largely unexplored experimentally. Here, we report transport measurements on high-quality, electrically insulating GdZnPO single crystals. We observe a giant low-temperature magnetic thermal conductivity down to $\sim$50 mK, described by $κ_{xx}^\mathrm{m}$ $\sim$ $κ_0+κ_1T$, where both $κ_0$ and $κ_1$ are positive constants associated with excitations along and off the spiral contour in reciprocal space, respectively. This behavior parallels the magnetic specific heat, underscoring the presence of mobile low-energy excitations intrinsic to the putative spiral spin liquid. Furthermore, the observed positive thermal Hall effect confirms the topological nature of at least some of these excitations. Our findings provide key insights into the itinerant and topological properties of low-lying spin excitations in the spiral spin-liquid candidate.
format Preprint
id arxiv_https___arxiv_org_abs_2508_18795
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Itinerant and topological excitations in a honeycomb spiral spin liquid candidate
Zhao, Yuqian
Yao, Xuping
Chen, Xun
Wan, Zongtang
Ma, Zhaohua
Hong, Xiaochen
Li, Yuesheng
Strongly Correlated Electrons
Materials Science
The frustrated insulating magnet can stabilize a spiral spin liquid, arising from cooperative fluctuations among a subextensively degenerate manifold of spiral configurations, with ground-state wave vectors forming a continuous contour or surface in reciprocal space. The atomic-mixing-free honeycomb antiferromagnet GdZnPO has recently emerged as a promising spiral spin-liquid candidate, hosting nontrivial topological excitations. Despite growing interest, the transport and topological properties of spiral spin liquids remain largely unexplored experimentally. Here, we report transport measurements on high-quality, electrically insulating GdZnPO single crystals. We observe a giant low-temperature magnetic thermal conductivity down to $\sim$50 mK, described by $κ_{xx}^\mathrm{m}$ $\sim$ $κ_0+κ_1T$, where both $κ_0$ and $κ_1$ are positive constants associated with excitations along and off the spiral contour in reciprocal space, respectively. This behavior parallels the magnetic specific heat, underscoring the presence of mobile low-energy excitations intrinsic to the putative spiral spin liquid. Furthermore, the observed positive thermal Hall effect confirms the topological nature of at least some of these excitations. Our findings provide key insights into the itinerant and topological properties of low-lying spin excitations in the spiral spin-liquid candidate.
title Itinerant and topological excitations in a honeycomb spiral spin liquid candidate
topic Strongly Correlated Electrons
Materials Science
url https://arxiv.org/abs/2508.18795