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First-principles study of electron dynamics with explicit treatment of momentum dispersion on Si nanowires along different directions
Authors:Fatima  Dayton J Vogel  Yulun Han  Talgat M Inerbaev  Nuri Oncel
Institution:1. Department of Physics &2. Astrophysics, University of North Dakota, Grand Forks, ND, USA;3. Department of Chemistry and Biochemistry, North Dakota State University, Fargo, ND, USA;4. Faculty of Physics and Technical Sciences, L.N. Gumilyov Eurasian National University, Astana, Kazakhstan
Abstract:ABSTRACT

In this research, ground-state electronic structure and optical properties along with photoinduced electron dynamics of Si nanowires oriented in various directions are reviewed. These nanowires are significant functional units of future nano-electronic devices. All observables are computed for a distribution of wave vectors at ambient temperature. Optical properties are computed under the approximation of momentum conservation. The total absorption is composed of partial contributions from fixed values of momentum. The on-the-fly non-adiabatic couplings obtained along the ab initio molecular dynamics nuclear trajectories are used as parameters for Redfield density matrix equation of motion. The main outcomes of this study are transition energies, light absorption spectra, electron and hole relaxation rates, and electron transport properties. The results of these calculations would contribute to the understanding of the mechanism of electron transfer process on the Si nanowires for optoelectronic applications.
Keywords:Momentum dispersion  excited state dynamics  nonadiabatic  nanowires  silicon
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