Pressure-induced collapse of ferromagnetism in Nickel
arXiv:2108.11977 · doi:10.1103/PhysRevB.105.024404
Abstract
Transition metals, Fe, Co and Ni, are the canonical systems for studying the effect of external perturbations on ferromagnetism. Among these, Ni stands out as it undergoes no structural phase transition under pressure. Here we have investigated the long-debated issue of pressure-induced magnetisation drop in Ni from first-principles. Our calculations confirm an abrupt quenching of magnetisation at high pressures, not associated with any structural phase transition. We find that the pressure substantially enhances the crystal field splitting of Ni- orbitals, driving the system towards a new metallic phase violating the Stoner Criterion for ferromagnetic ordering. Analysing the charge populations in each spin channel, we show that the next nearest neighbour interactions play a crucial role in quenching ferromagnetic ordering in Ni and materials alike.
5 pages, 5 figures
References in corpus (4)
- Quantum ESPRESSO: a modular and open-source software project for quantum simulations of materials
- Orbital magnetism in transition-metal systems: The role of local correlation effects
- Advanced first-principles theory of superconductivity including both lattice vibrations and spin fluctuations: The case of FeB
- Itinerant magnetism of chromium under pressure: a DFT+DMFT study