Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
1546332 | Physica E: Low-dimensional Systems and Nanostructures | 2011 | 7 Pages |
The drift velocity, electron temperature, electron energy and momentum loss rates of a two-dimensional electron gas are calculated in a GaN/AlGaN heterojunction (HJ) at high electric fields employing the energy and momentum balance technique, assuming the drifted Fermi–Dirac (F–D) distribution function for electrons. Besides the conventional scattering mechanisms, roughness induced new scattering mechanisms such as misfit piezoelectric and misfit deformation potential scatterings are considered in momentum relaxation. Energy loss rates due to acoustic phonons and polar optical phonon scattering with hot phonon effect are considered. The calculated drift velocity, electron temperature and energy loss rate are compared with the experimental data and a good agreement is obtained. The hot phonon effect is found to reduce the drift velocity, energy and momentum loss rates, whereas it enhances the electron temperature. Also the effect of using drifted F–D distribution, due to high carrier density in GaN/AlGaN HJs, contrary to the drifted Maxwellian distribution function used in the earlier calculations, is brought out.
Graphical abstractThe drift velocity, electron temperature, electron energy and momentum loss rates of a two-dimensional electron gas are calculated in a GaN/AlGaN heterojunction (HJ) at high electric fields employing the energy and momentum balance technique, assuming the drifted Fermi–Dirac (F–D) distribution function for electrons.Figure optionsDownload full-size imageDownload as PowerPoint slideHighlights► High field transport properties of a 2DEG are calculated in a GaN/AlGaN HJ. ► New scatterings due to misfit piezoelectric and deformation potential are considered. ► Good agreement between the calculated and experimental data. ► The hot phonon effect reduces energy and momentum loss rates and enhances Te. ► Effect of using drifted F–D distribution brought out.