Chern-Simons theory and atypical Hall conductivity in the Varma phase

Publication date

2018-02-20

Authors

Menezes Silva Da Costa, N.ISNI 0000000524210798
de Morais Smith, CristianeISNI 0000000394433837
Palumbo, GiandomenicoISNI 0000000507287195

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Abstract

In this article, we analyze the topological response of a fermionic model defined on the Lieb lattice in the presence of an electromagnetic field. The tight-binding model is built in terms of three species of spinless fermions and supports a topological Varma phase due to the spontaneous breaking of time-reversal symmetry. In the low-energy regime, the emergent effective Hamiltonian coincides with the so-called Duffin-Kemmer-Petiau (DKP) Hamiltonian, which describes relativistic pseudospin-0 quasiparticles. By considering a minimal coupling between the DKP quasiparticles and an external Abelian gauge field, we first find the Landau-level spectrum by fixing the Landau gauge; then we compute the emergent Chern-Simons theory for a weak-electromagnetic-field regime. The corresponding Hall conductivity reveals an atypical quantum Hall effect, which can be simulated in an artificial Lieb lattice.

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Menezes, N, Smith, C M & Palumbo, G 2018, 'Chern-Simons theory and atypical Hall conductivity in the Varma phase', Physical Review B, vol. 97, no. 7. https://doi.org/10.1103/PhysRevB.97.075135