Field-induced magnetic phase transitions and transport anomalies in GdAlSi

Fuente: arXiv
Guardado en:
Detalles Bibliográficos
Autores principales: Li, Zheng, Xu, Sheng, Wang, Yi-Yan, Li, Tian-Hao, Li, Shu-Xiang, Wang, Jin-Jin, Mi, Jun-Jian, Tao, Qian, Xu, Zhu-An
Formato: Preprint
Publicado: 2026
Materias:
Acceso en línea:
Etiquetas: Agregar Etiqueta
Sin Etiquetas, Sea el primero en etiquetar este registro!
_version_ 1866908759460151296
author Li, Zheng
Xu, Sheng
Wang, Yi-Yan
Li, Tian-Hao
Li, Shu-Xiang
Wang, Jin-Jin
Mi, Jun-Jian
Tao, Qian
Xu, Zhu-An
author_facet Li, Zheng
Xu, Sheng
Wang, Yi-Yan
Li, Tian-Hao
Li, Shu-Xiang
Wang, Jin-Jin
Mi, Jun-Jian
Tao, Qian
Xu, Zhu-An
contents Magnetic topological materials hosting non-zero Berry curvature have emerged as a focus of intensive research due to their exceptional magnetoelectric coupling phenomena and potential applications in next-generation spintronic devices. In this work, we successfully synthesized high-quality GdAlSi single crystals, a prototypical member of RAlX (R = rare earth elements; X = Si/Ge) family that has been theoretically predicted to sustain a non-trivial Weyl semimetal state. Through systematic investigations of magnetic and transport properties, we identified two successive antiferromagnetic transitions at critical temperatures TN1 31.9 K and TN2 31.1 K, as evidenced by temperature-dependent resistivity, magnetic susceptibility, and specific heat measurements. Notably, applied magnetic fields exceeding 8 T induce a third magnetic transition (TN3), generating a cascade of metamagnetic transitions that collectively form a dendritic phase diagram. This complex magnetic behavior is attributed to the interplay between localized Gd-4f moments and itinerant conduction electrons, possibly mediated by Dzyaloshinskii-Moriya interactions. Transport measurements revealed striking stepwise anomalies in magnetoresistance when crossing phase boundaries, accompanied by pronounced hysteresis loops arising from magnetic moment flopping processes. Our results not only establish GdAlSi as a rich platform for investigating correlated topological states, but also demonstrate its potential for engineering topological phase transitions through magnetic symmetry manipulation in Weyl semimetals.
format Preprint
id arxiv_https___arxiv_org_abs_2601_07275
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Field-induced magnetic phase transitions and transport anomalies in GdAlSi
Li, Zheng
Xu, Sheng
Wang, Yi-Yan
Li, Tian-Hao
Li, Shu-Xiang
Wang, Jin-Jin
Mi, Jun-Jian
Tao, Qian
Xu, Zhu-An
Strongly Correlated Electrons
Materials Science
Magnetic topological materials hosting non-zero Berry curvature have emerged as a focus of intensive research due to their exceptional magnetoelectric coupling phenomena and potential applications in next-generation spintronic devices. In this work, we successfully synthesized high-quality GdAlSi single crystals, a prototypical member of RAlX (R = rare earth elements; X = Si/Ge) family that has been theoretically predicted to sustain a non-trivial Weyl semimetal state. Through systematic investigations of magnetic and transport properties, we identified two successive antiferromagnetic transitions at critical temperatures TN1 31.9 K and TN2 31.1 K, as evidenced by temperature-dependent resistivity, magnetic susceptibility, and specific heat measurements. Notably, applied magnetic fields exceeding 8 T induce a third magnetic transition (TN3), generating a cascade of metamagnetic transitions that collectively form a dendritic phase diagram. This complex magnetic behavior is attributed to the interplay between localized Gd-4f moments and itinerant conduction electrons, possibly mediated by Dzyaloshinskii-Moriya interactions. Transport measurements revealed striking stepwise anomalies in magnetoresistance when crossing phase boundaries, accompanied by pronounced hysteresis loops arising from magnetic moment flopping processes. Our results not only establish GdAlSi as a rich platform for investigating correlated topological states, but also demonstrate its potential for engineering topological phase transitions through magnetic symmetry manipulation in Weyl semimetals.
title Field-induced magnetic phase transitions and transport anomalies in GdAlSi
topic Strongly Correlated Electrons
Materials Science
url https://arxiv.org/abs/2601.07275