Second harmonic generation spectroscopy of excitons in ZnO
M. Lafrentz, D. Brunne, A. V. Rodina, V. V. Pavlov, R. V. Pisarev, D., R. Yakovlev, A. Bakin, and M. Bayer

TL;DR
This study investigates how excitons in ZnO contribute to second harmonic generation (SHG), revealing resonant behaviors and developing a microscopic theory that accounts for magnetic and electric field effects beyond the electric-dipole approximation.
Contribution
The paper provides the first comprehensive experimental and theoretical analysis of exciton-induced SHG in ZnO, including the development of a microscopic model considering multiple nonlinear mechanisms.
Findings
Resonant SHG observed at multiple exciton states.
Magnetic field enhances SHG signals at exciton resonances.
Theoretical model agrees well with experimental data.
Abstract
Nonlinear optics of semiconductors is an important field of fundamental and applied research, but surprisingly the role of excitons in the coherent processes leading to harmonics generation has remained essentially unexplored. Here we report results of a comprehensive experimental and theoretical study of the three-photon process of optical second harmonic generation (SHG) involving the exciton resonances of the noncentrosymmetric hexagonal wide-band-gap semiconductor ZnO in the photon energy range of 3.2-3.5 eV. Resonant crystallographic SHG is observed for the 1s(A,B), 2s(A,B), 2p(A,B), and 1s(C) excitons. We show that strong SHG signals at these exciton resonances are induced by the application of a magnetic field when the incident and the SHG light wave vectors are along the crystal z-axis where the crystallographic SHG response vanishes. A microscopic theory of SHG generation…
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