June 2026

Journal

Evidence of Chiral Fermion Edge Modes through Geometric Engineering of Thermal Hall Effect in 𝛼−RuCl3

By:
Zhang, Heda ; Halasz, Gabor ; Ghosh, Sujoy ; Jesse, Stephen ; Ward, Thomas Z; Tennant, Alan; McGuire, Michael A; Yan, Jiaqiang
Journal Name:
Physical Review Letters
Page Number:
226301
Volume:
136
Publication Date:
June 8, 2026
View DOI Listing:
https://doi.org/10.1103/rn48-7j6y

Abstract

The experimental observation of half-integer-quantized thermal Hall conductivity in the Kitaev candidate material α-RuCl3 has served as a signature of non-Abelian anyons through an associated chiral Majorana edge mode. However, both the reproducibility of the quantized thermal Hall conductivity and the fundamental nature of the associated heat carriers, whether bosonic or fermionic, are subjects of ongoing and vigorous debate. In a recent theoretical work, it was proposed that varying the sample geometry through creating constrictions can distinguish between different origins of the thermal Hall effect in magnetic insulators. Here, we provide experimental evidence of chiral fermion edge modes by comparing the thermal Hall effect of a geometrically constricted α-RuCl3 sample with that of an unconstricted sample. In contrast to the unconstricted crystals where the thermal Hall signal fades below 5 K, the constricted crystals display a significant thermal Hall signal that remains measurable even at 2 K. This sharp difference agrees well with the theoretical prediction and provides compelling evidence for the contribution of chiral fermion edge modes to the thermal Hall effect in α-RuCl3. More broadly, this work confirms that the geometry dependence of the thermal Hall effect can help identify chiral spin liquids in candidate materials like α-RuCl3 and paves the way for the experimental realization of thermal anyon interferometry.