English

Massless Fermions on a half-space: The curious case of 2+1-dimensions

High Energy Physics - Theory 2022-10-26 v2 Mesoscale and Nanoscale Physics Mathematical Physics math.MP

Abstract

Boundary conditions for a massless Dirac fermion in 2+1 dimensions where the space is a half-plane are discussed in detail. It is argued that linear boundary conditions that leave the Hamiltonian Hermitian generically break CC PP and TT symmetries as well as Lorentz and conformal symmetry. We show that there is essentially one special case where a single species of fermion has CPTCPT and the full Poincare and conformal symmetry of the boundary. We show that, with doubled fermions, there is a second special case which respects CPTCPT but still violates Lorentz and conformal symmetry. This second special case is essentially the unique boundary condition where the Dirac operator has fermion zero mode edge states. We discuss how the edge states lead to exotic representations of scale, phase and translation symmetries and how imposing a symmetry requirement leads to edge ferromagnetism of the system. We prove that the exotic ferromagnetic representations are indeed carried by the ground states of the system perturbed by a class of interaction Hamiltonians which includes the non-relativistic Coulomb interaction.

Keywords

Cite

@article{arxiv.2208.06374,
  title  = {Massless Fermions on a half-space: The curious case of 2+1-dimensions},
  author = {Shovon Biswas and Gordon W. Semenoff},
  journal= {arXiv preprint arXiv:2208.06374},
  year   = {2022}
}

Comments

To appear in JHEP, accepted version