Spin-Orbital Short-Range Order on a Honeycomb-Based Lattice
Спин-орбитальный ближний порядок на решётке с медовой структурой
2012-05-03
SCID: 54.1/6vrw8cmk
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Ba3CuSb2O9Jahn-Teller distortionfrustrated magnetismrandom-bond spin-1/2 systemspin-orbital short-range order
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Abstract (AI)
Frustrated magnetic materials, in which local conditions for energy minimization are incompatible because of the lattice structure, can remain disordered to the lowest temperatures. Such is the case for Ba(3)CuSb(2)O(9), which is magnetically anisotropic at the atomic scale but curiously isotropic on mesoscopic length and time scales. We find that the frustration of Wannier's Ising model on the triangular lattice is imprinted in a nanostructured honeycomb lattice of Cu(2+) ions that resists a coherent static Jahn-Teller distortion. The resulting two-dimensional random-bond spin-1/2 system on the honeycomb lattice has a broad spectrum of spin-dimer-like excitations and low-energy spin degrees of freedom that retain overall hexagonal symmetry.
Key Findings
1
Atomic-scale anisotropy coexists with apparent isotropy on mesoscopic length and time scales.
2
Ba3CuSb2O9 remains magnetically disordered to the lowest temperatures despite atomic-scale magnetic anisotropy.
3
Frustration associated with Wannier’s Ising model on the triangular lattice is imprinted in a nanostructured honeycomb lattice of Cu2+ ions.
4
The Cu2+ honeycomb lattice resists developing a coherent static Jahn–Teller distortion, producing a two-dimensional random-bond spin-1/2 system.
5
The system exhibits a broad spectrum of spin-dimer-like excitations and low-energy spin degrees of freedom that preserve overall hexagonal symmetry.
Research Object
The two-dimensional random-bond spin-1/2 system of Cu2+ ions on the honeycomb lattice in Ba3CuSb2O9
Research Subject
Spin-orbital short-range order, resistance to coherent static Jahn–Teller distortion, spin-dimer-like excitations, and low-energy spin degrees of freedom retaining hexagonal symmetry
Publication Details
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2012-05-03
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