Ultrafast screening and carrier dynamics in ZnO: Theory and experiment

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Abstract

At carrier densities above the Mott density, Coulomb screening destroys the exciton resonance. This, together with band-gap renormalization and band filling, severely affects the optical spectra. We have experimentally studied these effects by ultrafast pump-probe reflectivity measurements on a ZnO single crystal at various wavelengths around the exciton resonance and in a broad carrier-density range. Theoretically, we determined the Mott density in ZnO to be 1.5×1024 m-3 at 300 K. Taking a field-theoretical approach, we derived and solved the Bethe-Salpeter ladder equation and we computed the density-dependent reflectivity and absorption spectra. A carrier dynamics model has been developed, containing three-photon absorption, carrier cooling, and carrier trapping near the surface. The agreement between the theoretical reflectivity based on our model and the experimental data is excellent. © 2011 American Physical Society.

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Versteegh, M. A. M., Kuis, T., Stoof, H. T. C., & Dijkhuis, J. I. (2011). Ultrafast screening and carrier dynamics in ZnO: Theory and experiment. Physical Review B - Condensed Matter and Materials Physics, 84(3). https://doi.org/10.1103/PhysRevB.84.035207

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