Magnetic properties of equiatomic CrMnFeCoNi
arXiv:2202.11073 · doi:10.1103/PhysRevB.106.014418
Abstract
Magnetic, specific heat, and structural properties of the equiatomic Cantor alloy system are reported for temperatures between 5 kelvin and 300 kelvin, and up to fields of 70 kilo-oersted. Magnetization measurements performed on as-cast, annealed, and cold-worked samples reveal a strong processing history dependence and that high-temperature annealing after cold-working does not restore the alloy to a pristine state. Measurements on known precipitates show that the two transitions, detected at 43 kelvin and 85 kelvin, are intrinsic to the Cantor alloy and not the result of an impurity phase. Experimental and ab initio density functional theory (DFT) computational results suggest that these transitions are a weak ferrimagnetic transition and a spin-glass-like transition, respectively, and magnetic and specific heat measurements provide evidence of significant Stoner enhancement and electron-electron interactions within the material.
16 pages, 12 figures
References in corpus (5)
- Ferromagnetic cluster spin-glass behavior in PrRhSn3
- A Spin-Orbital Singlet and Quantum Critical Point on the Diamond Lattice: FeSc2S4
- Bulk and element specific magnetism of the medium and high entropy Cantor-Wu alloys
- Boron based new high entropy alloy superconductor Mo0.11W0.11V0.11Re0.34B0.33
- Field-dependent AC susceptibility of itinerant ferromagnets