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DOE OSTI · 3740840

Unveiling field-transverse spin anisotropy in the spin liquid candidate α-RuCl3 via spin Hall magnetoresistance

Abstract

α-RuCl3 has emerged as a possible candidate for a quantum spin liquid (QSL) that promises exotic quasiparticles relevant for fault-tolerant quantum computation. Here, we report spin-sensitive transport measurements using a proximal spin Hall metal, platinum (Pt), to probe magnetic moments in the insulator α-RuCl3. We observe spin Hall magnetoresistance (SMR), where both the transverse and longitudinal resistivities exhibit angular oscillations between the in-plane magnetic field and the current, driven by the interplay between the spin Hall effect in Pt and local magnetic moments in α-RuCl3. These oscillations occur from 1.5 to 18 T, covering the zigzag antiferromagnetic, putative QSL, and supposedly partially field-polarized phases. The phase of the SMR oscillations suggests that the local moments, whether static or fluctuating, develop spin anisotropy with a quantization axis in-plane and largely transverse to the magnetic field across all fields from 1.5 to 18 T. Temperature dependence indicates that the spin anisotropy operates at an energy scale similar to that of the reported QSL signatures in α-RuCl3.

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BibTeXRIS

Idzuchi, Hiroshi [Tohoku University, Japan], Kimata, Motoi [Tohoku University, Japan], Okamoto, Satoshi [ORNL] (ORCID:0000000204937568), Laurell, Pontus Bengt Johan [ORNL] (ORCID:0000000235254145), Mohanta, Narayan [ORNL] (ORCID:0000000331880445), Cothrine, Matthew [University of Tennessee (UT)], Nagler, Stephen [ORNL] (ORCID:0000000272342339), Mandrus, David [University of Tennessee, Knoxville (UTK)], Banerjee, Arnab [Purdue University], Chen, Yong [Purdue University]. 2026-07-01. Unveiling field-transverse spin anisotropy in the spin liquid candidate α-RuCl3 via spin Hall magnetoresistance. https://doi.org/10.1016/j.newton.2026.100505

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