arXiv · 1612.06075
Non-Fermi-liquid at (2+1)d ferromagnetic quantum critical point
Abstract
We construct a two-dimensional lattice model of fermions coupled to Ising ferromagnetic critical fluctuations. Using extensive sign-problem-free quantum Monte Carlo simulations, we show that the model realizes a continuous itinerant quantum phase transition. In comparison with other similar itinerant quantum critical points (QCPs), our QCP shows much weaker superconductivity tendency with no superconducting state down to the lowest temperature investigated, hence making the system a good platform for the exploration of quantum critical fluctuations. Remarkably, clear signatures of non-Fermi-liquid behavior in the fermion propagators are observed at the QCP. The critical fluctuations at the QCP partially resemble Hertz-Millis-Moriya behavior. However, careful scaling analysis reveals that the QCP belongs to a different universality class, deviating from both (2+1)d Ising and Hertz-Millis-Moriya predictions.
Explore related subjects
Keep this discovery
Xiao Yan Xu, Kai Sun, Yoni Schattner, Erez Berg, Zi Yang Meng. 2016-12-19. Non-Fermi-liquid at (2+1)d ferromagnetic quantum critical point. https://doi.org/10.1103/physrevx.7.031058
Cite the original work for its findings. Save a collection to share your selection of sources.