Kitaev materialsbond-directional Ising exchangequantum spin liquidsspin–orbit assisted Mott insulatorsspin–orbit entangled j=1/2 moments
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Abstract (AI)
In transition-metal compounds with partially filled 4d and 5d shells spin–orbit entanglement, electronic correlations, and crystal-field effects conspire to give rise to a variety of novel forms of topological quantum matter. This includes Kitaev materials — a family of spin–orbit assisted Mott insulators, in which local, spin–orbit entangled j=1/2 moments form that are subject to dominant bond-directional Ising exchange interactions. On a conceptual level, Kitaev materials attract much interest for their potential for unconventional forms of magnetism, such as spin liquid physics in two- and three-dimensional lattice geometries or the formation of non-trivial spin textures. Experimentally, a number of Kitaev materials have been synthesized, which includes the honeycomb materials Na2IrO3, α-Li2IrO3, H3LiIr2O6, and, most prominently, α-RuCl3, the triangular materials Ba3IrxTi3−xO9, as well as the three-dimensional hyper-honeycomb and stripy-honeycomb materials β-Li2IrO3 and γ-Li2IrO3. We provide a short review of the current status of the theoretical and experimental exploration of these Kitaev materials.
Key Findings
1
Kitaev materials are spin–orbit-assisted Mott insulators whose local spin–orbit-entangled j=1/2 moments experience dominant bond-directional Ising exchange interactions.
2
Partially filled 4d and 5d transition-metal compounds can host topological quantum matter through intertwined spin–orbit coupling, electronic correlations, and crystal-field effects.
3
Several candidate Kitaev materials have been synthesized across honeycomb, triangular, hyper-honeycomb, and stripy-honeycomb lattices, including Na2IrO3, α-Li2IrO3, H3LiIr2O6, α-RuCl3, Ba3IrxTi3−xO9, β-Li2IrO3, and γ-Li2IrO3.
4
The field has advanced through combined theoretical and experimental investigation of the structures and magnetic properties of these candidate materials.
5
These materials are promising platforms for unconventional magnetism, including spin-liquid behavior on two- and three-dimensional lattices and nontrivial spin textures.
Research Object
Kitaev materials, including spin–orbit-assisted Mott-insulating transition-metal compounds with 4d or 5d electrons
Research Subject
Their spin–orbit-entangled j=1/2 moments, dominant bond-directional Ising exchange interactions, and resulting unconventional magnetic and topological phenomena
Publication Details
Publication Date
2022-01-03
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