Entropy evolution in the magnetic phases of partially frustrated CePdAl
arXiv:1612.03104 · doi:10.1103/PhysRevLett.118.107204
Abstract
In the heavy-fermion metal CePdAl long-range antiferromagnetic order coexists with geometric frustration of one third of the Ce moments. At low temperatures the Kondo effect tends to screen the frustrated moments. We use magnetic fields to suppress the Kondo screening and study the magnetic phase diagram and the evolution of the entropy with employing thermodynamic probes. We estimate the frustration by introducing a definition of the frustration parameter based on the enhanced entropy, a fundamental feature of frustrated systems. In the field range where the Kondo screening is suppressed the liberated moments tend to maximize the magnetic entropy and strongly enhance the frustration. Based on our experiments, this field range may be a promising candidate to search for a quantum spin liquid.
5+2 pages with 4 figures
References in corpus (6)
- Weak magnetism and non-Fermi liquids near heavy-fermion critical points
- Physical realization of a quantum spin liquid based on a novel frustration mechanism
- Characteristic signatures of quantum criticality driven by geometrical frustration
- Isosbestic points in the spectral function of correlated electrons
- Temperature-field phase diagram of geometrically frustrated CePdAl
- Signature of frustrated moments in quantum critical CePdNiAl