September 2025

Journal

Synthesis and Characterization of Metastable Cobalt Honeycomb KCoAsO4

By:
Pressley, Lucas A; Sarkis, Colin L; Felder, Justin B; Dela Cruz, Clarina R; Unocic, Raymond; Gai, Zheng ; Einkauf, Jeffrey D; Pethe, Saurabh Prakash ; Paranthaman, Mariappan ; Berlijn, Tom ; Villanova, John; Okamoto, Satoshi ; McGuire, Michael A; Tennant, David A; Nagler, Stephen E; Bridges, Craig A
Journal Name:
Inorganic Chemistry
Page Number:
13696-13704
Volume:
64
Issue Number:
27
Publication Date:
September 11, 2025
View DOI Listing:
https://doi.org/10.1021/acs.inorgchem.5c00932

Abstract

The Kitaev model has served as a long-sought-after target in the realization of a quantum spin liquid that could host Majorana Fermions. Such non-Abelian anyons could revolutionize quantum computing if properly implemented to overcome decoherence. A 3d7 electronic configuration, like Co2+, has been explored by theory and experimental work to design Kitaev materials. Here, we report the synthesis of a new cobaltate honeycomb material KCoAsO4. The compound is synthesized through a low-temperature solution route and crystallized in space group R¯3 with lattice parameters a = 5.0394(1) and c = 28.6790(1) as determined by neutron powder diffraction. The crystal structure follows motifs similar to those of the honeycomb compound BaCo2(AsO4)2 but presents differing magnetic behavior. Magnetization/heat capacity measurements on the powder show antiferromagnetic transition TN = 14 K. Two lower-temperature transitions are present in susceptibility at low field that resemble spin reorientations. Magnetization data as a function of field have curvature indicative of metamagnetic behavior below the magnetic ordering temperature, with the magnetic ordering suppressed upon application of a higher magnetic field. Computational studies suggest the presence of a weak nearest-neighbor Kitaev term, K1, consistent with related honeycomb cobaltates. Together, the data suggest that this material should present a new platform for developing Kitaev quantum spin liquids.