Static and resonant properties of decorated square kagome lattice compound KCu(TeO)(SO)Cl
arXiv:2212.11623 · doi:10.1016/j.matchemphys.2024.129348
Abstract
The magnetic subsystem of nabokoite, KCu(TeO)(SO)Cl, is constituted by copper ions forming a buckled square kagomé lattice decorated by quasi-isolated ions. This combination determines peculiar physical properties of this compound evidenced in electron spin resonance (ESR) spectroscopy, dielectric permittivity , magnetization and specific heat measurements. At lowering temperature, the magnetic susceptibility passes through a broad hump inherent for low-dimensional magnetic systems at about 150 K and a sharp peak at antiferromagnetic phase transition at K. The curves demonstrate additional peak-like anomaly at K robust to magnetic field. The latter can be ascribed to low-lying singlet excitations filling the singlet-triplet gap in magnetic excitation spectrum of the square kagomé lattice [J.Richter, O.Derzhko and J.Schnack, Phys. Rev. B \textbf{105} (2022) 144427]. ESR spectroscopy provides indications that antiferromagnetic structure below is non-collinear. Separate issue is the observation of antiferroelectric-type behavior in at low temperatures, which tentatively reduces the symmetry and partially lifts frustration of magnetic interactions of decorating copper ions with buckled square kagomé lattice. These complex thermodynamic and resonant properties signal the presence of two weakly coupled magnetic subsystems in nabokoite, namely a spin-liquid in square kagomé lattice layers and an antiferromagnet represented by decorating ions.
14 pages, 13 figures
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Cited by in corpus (4)
- Field-induced spin liquid in the decorated square-kagome antiferromagnet nabokoite KCuTeO(SO)Cl
- Symmetry, Superposition and Fragmentation in Classical Spin Liquids: A General Framework and Applications to Square Kagome Magnets
- Quantum phase diagram of the spin- Heisenberg antiferromagnet on the square-kagome lattice: a tensor network study
- Fractional Wannier Orbitals and Tight-Binding Gauge Fields for Kitaev Honeycomb Superlattices with Flat Majorana Bands