Berry phase dependent quantum trajectories of electron-hole pairs in semiconductors under intense terahertz fields

ORAL

Abstract

Quantum evolution of particles under strong fields can be approximated by the quantum trajectories that satisfy the stationary phase condition in the Dirac-Feynmann path integrals. The quantum trajectories are the key concept to understand strong-field optics phenomena, such as high-order harmonic generation (HHG), above-threshold ionization (ATI), and high-order terahertz siedeband generation (HSG) [1]. The HSG in semiconductors may have a wealth of physics due to the possible nontrivial ``vacuum'' states of band materials. We find that in a spin-orbit-coupled semiconductor, the cyclic quantum trajectories of an electron-hole pair under a strong terahertz field accumulates nontrivial Berry phases. We study the monolayer MoS$_2$ as a model system and find that the Berry phases are given by the Faraday rotation angles of the pulse emission from the material under short-pulse excitation. This result demonstrates an interesting Berry phase dependent effect in the extremely nonlinear optics of semiconductors. \\[4pt] [1] B. Zaks, R. B. Liu, and M. S. Sherwin, Nature \textbf{483}, 580 (2012).

Authors

  • Fan Yang

    Department of Physics, The Chinese University of Hong Kong, Shatin, N.T., Hong Kong, China

  • Renbao Liu

    Department of Physics and Center for Quantum Coherence, The Chinese University of Hong Kong, Hong Kong, China, Department of Physics, The Chinese University of Hong Kong, Shatin, N.T., Hong Kong, China, Department of Physics, The Chinese University of Hong Kong