English

Matter fields near quantum critical point in (2+1)-dimensional U(1) gauge theory

Strongly Correlated Electrons 2010-09-07 v2 Superconductivity

Abstract

We study chiral phase transition and confinement of matter fields in (2+1)-dimensional U(1) gauge theory of massless Dirac fermions and scalar bosons. The vanishing scalar boson mass, r=0r=0, defines a quantum critical point between the Higgs phase and the Coulomb phase. We consider only the critical point r=0r=0 and the Coulomb phase with r>0r > 0. The Dirac fermion acquires a dynamical mass when its flavor is less than certain critical value NfcN_{f}^{c}, which depends quantitatively on the flavor NbN_{b} and the scalar boson mass rr. When Nf<NfcN_{f} < N_{f}^{c}, the matter fields carrying internal gauge charge are all confined if r0r \neq 0 but are deconfined at the quantum critical point r=0r = 0. The system has distinct low-energy elementary excitations at the critical point r=0r=0 and in the Coulomb phase with r0r \neq 0. We calculate the specific heat and susceptibility of the system at r=0r=0 and r0r \neq 0, which can help to detect the quantum critical point and to judge whether dynamical fermion mass generation takes place.

Keywords

Cite

@article{arxiv.0901.2889,
  title  = {Matter fields near quantum critical point in (2+1)-dimensional U(1) gauge theory},
  author = {Guo-Zhu Liu and Wei Li and Geng Cheng},
  journal= {arXiv preprint arXiv:0901.2889},
  year   = {2010}
}

Comments

18 pages, 5 figures

R2 v1 2026-06-21T12:02:31.863Z