English

Disorder-driven quantum transition in relativistic semimetals: functional renormalization via the porous medium equation

Disordered Systems and Neural Networks 2018-10-24 v2 High Energy Physics - Theory Mathematical Physics math.MP

Abstract

In the presence of randomness, a relativistic semimetal undergoes a quantum transition towards a diffusive phase. A standard approach relates this transition to the U(N)U(N) Gross-Neveu model in the limit of N0N \to 0. We show that the corresponding fixed point is infinitely unstable, demonstrating the necessity to include fluctuations beyond the usual Gaussian approximation. We develop a functional renormalization group method amenable to include these effects and show that the disorder distribution renormalizes following the so-called porous medium equation. We find that the transition is controlled by a nonanalytic fixed point drastically different from that of the U(N)U(N) Gross-Neveu model. Our approach provides a unique mechanism of spontaneous generation of a finite density of states and also characterizes the scaling behavior of the broad distribution of fluctuations close to the transition. It can be applied to other problems where nonanalytic effects may play a role, such as the Anderson localization transition.

Keywords

Cite

@article{arxiv.1710.07932,
  title  = {Disorder-driven quantum transition in relativistic semimetals: functional renormalization via the porous medium equation},
  author = {Ivan Balog and David Carpentier and Andrei A. Fedorenko},
  journal= {arXiv preprint arXiv:1710.07932},
  year   = {2018}
}

Comments

5+9 pages, 2+3 figures