English

Nanoscale Transport of Surface Excitons at the Interface between ZnO and a Molecular Monolayer

Mesoscale and Nanoscale Physics 2015-03-31 v1

Abstract

Excitons play a key role for the optoelectronic properties of hybrid systems. We apply near-field scanning optical microscopy (NSOM) with a 100-nm100\,\text{-nm} spatial resolution to study the photoluminescence of surface excitons (SX) in a 20nm20\,\text{nm} thick ZnO film capped with a monolayer of stearic acid molecules. Emission from SX, donor-bound (DX), and - at sample temperatures T>20KT>20\,\text{K} - free (FX) excitons is separated in steady-state and time-resolved photoluminescence spectra. The 4meV4\,\text{meV} broad smooth envelope of SX emission at T<10KT<10\,\text{K} points to an inhomogeneous distribution of SX transition energies and spectral diffusion caused by diffusive SX transport on a 50nm50\,\text{nm} scale with a SX diffusion coefficient of D(T<10 K)=0.30\,\text{cm^2/s}.

Keywords

Cite

@article{arxiv.1501.01446,
  title  = {Nanoscale Transport of Surface Excitons at the Interface between ZnO and a Molecular Monolayer},
  author = {Sebastian Friede and Sergei Kuehn and Sergey Sadofev and Sylke Blumstengel and Fritz Henneberger and Thomas Elsaesser},
  journal= {arXiv preprint arXiv:1501.01446},
  year   = {2015}
}

Comments

14 pages, 3 figures