Zig-Zag magnetic order and potential Kitaev interactions in the spin-1 honeycomb lattice KNiAsO$_4$
K.M. Taddei, V.O. Garlea, A.M. Samarakoon, L.D. Sanjeewa, J. Xing,, T.W. Heitmann, C. dela Cruz, A.S. Sefat, D. Parker

TL;DR
This study investigates KNiAsO4, a spin-1 honeycomb system, revealing zig-zag magnetic order and potential Kitaev interactions, with experimental and theoretical evidence suggesting it as a candidate near a quantum spin liquid state.
Contribution
The paper provides the first detailed experimental and theoretical analysis of KNiAsO4, demonstrating its magnetic structure and potential Kitaev interactions in a spin-1 honeycomb lattice.
Findings
Antiferromagnetic transition at ~19 K
Zig-zag magnetic order observed
Modeling indicates extended Kitaev interactions are necessary
Abstract
Despite the exciting implications of the Kitaev spin-Hamiltonian, finding and confirming the quantum spin liquid state has proven incredibly difficult. Recently the applicability of the model has been expanded through the development of a microscopic description of a spin-1 Kitaev interaction. Here we explore a candidate spin-1 honeycomb system, KNiAsO , which meets many of the proposed criteria to generate such an interaction. Bulk measurements reveal an antiferromagnetic transition at 19 K which is generally robust to applied magnetic fields. Neutron diffraction measurements show magnetic order with a ordering vector which results in the well-known ``zig-zag" magnetic structure thought to be adjacent to the spin-liquid ground state. Field dependent diffraction shows that while the structure is robust, the field can tune the direction of the…
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Taxonomy
TopicsAdvanced Condensed Matter Physics · Physics of Superconductivity and Magnetism · Cold Atom Physics and Bose-Einstein Condensates
