Photoinduced valley and electron-hole symmetry breaking in α-T3 lattice: The role of a variable Berry phase

Abstract

We consider α-T3 lattice illuminated by intense circularly polarized radiation in terahertz regime. We present quasienergy band structure, time-averaged energy spectrum and time-averaged density of states of α-T3 lattice by solving the Floquet Hamiltonian numerically. We obtain exact analytical expressions of the quasienergies at the Dirac points for all values of α and field strength. We find that the quasienergy band gaps at the Dirac point decrease with increase of α. Approximate forms of quasienergy and band gaps at single and multi-photon resonant points are derived using rotating wave approximation. The expressions reveal a stark dependence of quasienergy on the Berry phase of the charge carrier. The quasi energy flat band remains unaltered in presence of radiation for dice lattice (α=1). However, it acquires a dispersion in and around the Dirac and even-photon resonant points when 0<α<1. The valley degeneracy and electron-hole symmetry in the quasienergy spectrum are broken for 0<α<1. Unlike graphene, the mean energy follows closely the linear dispersion of the Dirac cones till near the single-photon resonant point in dice lattice. There are additional peaks in the time-averaged density of states at the Dirac point for 0 < α ≤ 1.

0

Turn this paper into a lesson

ArcXiv compiles a structured reading guide from this paper's metadata: plain-English importance, contributions, prerequisite concepts, which sections to read first, flashcards, and a quiz. Grounded in the abstract, never invented.

Discussion (0)

Sign in to join the discussion.

Loading comments…