Nature of the low energy excitations in the short range ordered region of CsCuCl as revealed by Cs NMR
arXiv:1203.2215 · doi:10.1088/1367-2630/13/9/093029
Abstract
We report nuclear magnetic resonance measurements of the spin-1/2 anisotropic triangular lattice antiferromagnet CsCuCl as a function of temperature and applied magnetic field. The observed temperature and magnetic field dependence of the NMR relaxation rate suggests that low energy excitations in the short-range ordered region stabilized over a wide range of intermediate fields and temperatures of the phase diagram are gapless or nearly gapless fermionic excitations. An upper bound on the size of the gap of 0.037 meV is established. The magnetization and NMR relaxation rate can be qualitatively described either by a quasi-1D picture of weakly coupled chains, or by mean-field theories of specific 2D spin liquids; however, quantitative differences exist between data and theory in both cases. This comparison indicates that 2D interactions are quantitatively important in describing the low-energy physics.
14 pages, 8 figures
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- Dynamical reduction of the dimensionality of exchange interactions and the "spin-liquid" phase of -(BEDT-TTF)
- Hard-core boson approach to the spin-1/2 triangular-lattice antiferromagnet CsCuCl at finite temperatures in magnetic fields higher than the saturation field
- Spin relaxation in CsCuClBr
- Singular spin-wave theory and scattering continua in the cone state of Cs_2CuCl_4
- Dynamic Simulations of Strongly Coupled Spin Ensembles for Inferring Nature of Electronic Correlations from Nuclear Magnetic Resonance
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