Entropy of spin clusters with frustrated geometry
arXiv:1310.3298 · doi:10.1016/j.physleta.2014.04.063
Abstract
Geometrically frustrated clusters of Ising spins of different shapes on a triangular lattice are studied by exact enumeration and Monte Carlo simulation. The focus is laid on the ground-state energy and residual entropy behaviors as functions of the cluster shape and size, as well as the spin value. Depending on the cluster shape, the residual entropy density on approach to the thermodynamic limit can either vanish or remain finite and the dependence can be decreasing, increasing or non-monotonic. Nevertheless, the relative entropies normalized by the respective thermodynamic limit values turn out to be little sensitive to the spin value. Some interesting finite-temperature properties of the clusters are also discussed and attention is drawn to their magnetocaloric properties.
15 pages, 7 figures
References in corpus (4)
- Enhanced magnetocaloric effect in frustrated magnets
- Phase Diagram of a Diluted Triangular Lattice Ising Antiferromagnet in a Field
- Residual entropy of spin-s triangular Ising antiferromagnet
- Effects of selective dilution on phase diagram and ground-state magnetizations of an Ising antiferromagnet on triangular and honeycomb lattices
Cited by in corpus (9)
- Giant magnetocaloric effect, magnetization plateaux and jumps of the regular Ising polyhedra
- Thermodynamic and magnetocaloric properties of geometrically frustrated Ising nanoclusters
- Magnetocaloric properties of V6 molecular magnet
- Magnetization process and magnetocaloric effect in geometrically frustrated Ising antiferromagnet and spin ice models on a `Star of David' nanocluster
- Magnetocaloric properties of frustrated tetrahedra-based spin nanoclusters
- Magnetization distribution in a spin ladder-shaped quantum nanomagnet
- Ground-state magnetic properties of spin ladder-shaped quantum nanomagnet: Exact diagonalization study
- Estimating the Number of States via the Rodeo Algorithm for Quantum Computation
- Effect of Single-ion Anisotropy on Magnetocaloric Properties of Frustrated Spin- Ising Nanoclusters