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High-field fate of the Kitaev quantum spin liquid in α-RuCl3

K. Imamura, R. Ohno, Y. C. Tsuzuki, Y. Akui, R. Namba, K. Ishihara, M. Akaki, M. Kimata, N. Kurita, H. Tanaka, N. Kimura, S. Imajo, A. Matsuo, K. Kindo, Y. Matsuda, K. Hashimoto, Y. Mizukami, T. Shibauchi

cond-mat.str-elarXiv:2608.18530

Abstract

Kitaev quantum spin liquids (KQSLs) host fractionalized excitations described by itinerant Majorana quasiparticles and gapped Z2 fluxes (visons), providing a platform for emergent topological matter. Whether such a state survives under strong magnetic fields, however, remains an open question. The layered honeycomb magnet α-RuCl3 is a leading candidate material: an in-plane field of 7 T suppresses antiferromagnetic order and induces a quantum-disordered phase exhibiting signatures consistent with Majorana excitations, including an anomalous thermal Hall effect and field-angle-dependent specific heat. At higher fields, the magnetization approaches saturation, suggesting a transition to a spin-polarized state, yet the microscopic evolution between these limits remains unresolved. Here we report high-field specific heat measurements up to 24 T that reveal a distinct crossover at μ0H*≈15 T, beyond which the perturbative Kitaev description breaks down. Above H*, the characteristic six-fold angular modulation of the specific heat collapses and the excitation gap deviates from the predicted H3 scaling. Meanwhile, the gap decreases with increasing field and the in-plane magnetization anisotropy persists up to 24 T, both in sharp contrast to a trivial spin-polarized state, indicating that KQSL signatures are preserved even at 90 % of magnetization saturation. These results reveal that the KQSL in α-RuCl3 extends well beyond the perturbative window, persisting as a nonperturbative regime in which the Majorana and vison energy scales merge, before eventually giving way to spin polarization. This thermodynamic roadmap provides a basis for understanding how fractionalized phases evolve under strong magnetic fields.

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