Revealing the microscopic origin of the magnetization plateau in NaNiBiO
arXiv:2602.03936
Abstract
Recent experimental studies of the spin-1 honeycomb antiferromagnet NaNiBiO have revealed a pronounced one-third magnetization plateau under applied magnetic fields, highlighting the presence of strong magnetic frustration and anisotropy in this material. Such behavior has been attributed to substantial bond-dependent Kitaev interactions in combination with single-ion anisotropy, placing NaNiBiO among honeycomb compounds of interest for unconventional magnetic phases. Motivated by these observations, we present a first-principles-based analysis of the magnetic interactions in NaNiBiO. By combining density-functional calculations with microscopic modeling, we extract the relevant exchange parameters and construct an effective spin model that quantitatively reproduces both the elastic neutron-scattering spectra and the magnetization curve. The model captures the experimentally observed zero-field zigzag magnetic order, and proposes a state at intermediate magnetic fields, realizing the 1/3-magnetization plateau in a simpler way than suggested in previous works. Crucially, we show that the one-third magnetization plateau does not require Kitaev interactions; instead, it arises from the interplay of strong out-of-plane single-ion anisotropy and competing ferromagnetic nearest-neighbor () and antiferromagnetic third-neighbor () Heisenberg couplings. These results establish a consistent microscopic description of NaNiBiO and clarify the origin of its field-induced plateau phase.
11 pages, 8 figures