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Geometry dependence of the thermal Hall effect in chiral spin liquids

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abstract

Recent thermal-transport experiments on the Kitaev magnet $\alpha$-RuCl$_3$ highlight the challenge in identifying chiral quantum spin liquids through their quantized thermal Hall effect. Here, we propose that variations in the underlying sample geometry -- for example, the introduction of appropriate constrictions -- reveal unique aspects of the thermal Hall effect and can be used to determine its origin. By studying standard phenomenological heat-transport equations based on minimal assumptions, we show that, whereas a conventional thermal Hall effect due to, e.g., phonons or magnons is completely geometry independent, a thermal Hall effect originating from a chiral fermion edge mode is significantly enhanced by constrictions at low temperatures. This unique geometry-dependent signature provides a practical approach for identifying chiral spin liquids in candidate materials like $\alpha$-RuCl$_3$ using currently available thermal-transport experiments.

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Thermal Hall transport in Kitaev spin liquids

cond-mat.str-el · 2025-07-22 · conditional · novelty 7.0

At intermediate temperatures, the thermal Hall conductivity divided by temperature in the extended Kitaev model overshoots the half-integer quantized value, with a hump that follows the sign of the Majorana Chern number and is enhanced by positive Gamma and negative Gamma-prime interactions.

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  • Thermal Hall transport in Kitaev spin liquids cond-mat.str-el · 2025-07-22 · conditional · none · ref 47 · internal anchor

    At intermediate temperatures, the thermal Hall conductivity divided by temperature in the extended Kitaev model overshoots the half-integer quantized value, with a hump that follows the sign of the Majorana Chern number and is enhanced by positive Gamma and negative Gamma-prime interactions.