paper

Phonon dynamics in Chromium under pressure: absence of phonon criticality at the approach of the quantum critical point

arXiv:2607.18015 · doi:10.1103/f6tk-lf64

Abstract

Fermi surface nesting is key to understanding the origin of the itinerant antiferromagnetic spin density wave in chromium. This magnetic order is accompanied by a charge-density wave, and both density waves disappear above the critical pressure GPa at low temperatures, defining a quantum critical point. Whether this pressure-induced quantum phase transition is accompanied by a phonon instability remains an open question. Here, we use inelastic x-ray scattering to track the room-temperature acoustic phonon dispersions at pressures up to GPa, well above . We focus on the Kohn anomalies near the and points of the Brillouin zone, with the point anomaly lying close to the incommensurate spin-density-wave ordering vector. The phonon branches harden smoothly under pressure, while the positions and wave-vector extents of both anomalies remain essentially unchanged across , with no additional critical softening. \textit{Ab initio} calculations likewise show that Fermi surface nesting remains robust above . These results indicate that the pressure-induced quantum phase transition is not driven by a phonon instability and support a primarily spin-density-wave-driven mechanism in presence of a robust Kohn anomaly.

accepted in Phys. Rev. B