English

Dominant Kitaev interaction and field-induced quantum phase transitions in triangular-lattice KCeSe2

Strongly Correlated Electrons 2025-05-30 v1 Materials Science

Abstract

Realizing Kitaev interactions on triangular lattices offers a compelling platform for exploring quantum-spin-liquid physics beyond the conventional honeycomb lattice framework. Here, we investigate the triangular-lattice antiferromagnet KCeSe2, where multiple probes reveal strong magnetic anisotropy suggesting significant Kitaev physics. Through detailed and combined analysis of magnetization, neutron scattering, and thermodynamic experiments, we identify dominant ferromagnetic Kitaev (K=1.82K = -1.82 K) and antiferromagnetic Heisenberg (J=1.34J = 1.34 K) interactions that stabilize a stripe-yzyz ordered ground state via an order-by-disorder mechanism. Magnetic fields applied along the Kitaev bond direction induce two phase transitions at 1.67 T and 3.8 T, consistent with density matrix renormalization group (DMRG) calculations predictions of a progression from stripe-yzyz to stripe-canted and spin-polarized phases. Near the 1.67 T quantum critical point, enhanced quantum fluctuations suggest conditions favorable for exotic excitations. These results establish KCeSe2 as a platform for exploring Kitaev physics on triangular lattices.

Keywords

Cite

@article{arxiv.2505.23502,
  title  = {Dominant Kitaev interaction and field-induced quantum phase transitions in triangular-lattice KCeSe2},
  author = {Mingtai Xie and Zheng Zhang and Weizhen Zhuo and Wei Xu and Jinfeng Zhu and Jan Embs and Lei Wang and Zikang Li and Huanpeng Bu and Anmin Zhang and Feng Jin and Jianting Ji and Zhongwen Ouyang and Liusuo Wu and Jie Ma and Qingming Zhang},
  journal= {arXiv preprint arXiv:2505.23502},
  year   = {2025}
}

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8 Pages, 4 Figures