Condensation of Free Excitons into Electron-Hole Drops in Pure Germanium
- 15 April 1972
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 5 (8), 3079-3087
- https://doi.org/10.1103/physrevb.5.3079
Abstract
A simple theory is given to justify the existence, in intrinsic semiconductors, of electron-hole drops (EHD) resulting from the condensation of free excitons. It is shown that such a condensation is favored by a multivalley band structure. The critical density of electron-hole pairs in EHD is then determined in pure Ge from luminescence experiments and it is compared to other data. This study shows that is of the order of 2 × x in this material. We also investigate the light emission of EHD in uniaxially stressed Ge. The results obtained are interpreted from the stress variation of and they are shown to be consistent with the EHD theoretical model. In addition, we study, in the same material, the temperature dependence of the EHD total lifetime. Finally, we briefly discuss the case of Si with respect to the EHD model.
Keywords
This publication has 14 references indexed in Scilit:
- Motion of Electron-Hole Drops in Pure GePhysical Review Letters, 1971
- Simplified Theory of Electron Correlations in MetalsPhysical Review B, 1971
- Valley-Orbit Splitting of Free Excitons? The Absorption Edge of SiPhysical Review Letters, 1970
- Recombination Kinetics of Excitonic Molecules and Free Excitons in Intrinsic SiliconPhysical Review B, 1970
- Investigation of the radiative recombination of the excitonic molecule in Ge and SiJournal of Luminescence, 1970
- Experimental Observation of the Excitonic MoleculePhysical Review Letters, 1966
- Influence of Uniaxial Stress on the Indirect Absorption Edge in Silicon and GermaniumPhysical Review B, 1966
- Cyclotron Resonance Experiments in Uniaxially Stressed Silicon: Valence Band Inverse Mass Parameters and Deformation PotentialsPhysical Review B, 1963
- Selection Rules Connecting Different Points in the Brillouin ZonePhysical Review B, 1961
- Mobile and Immobile Effective-Mass-Particle Complexes in Nonmetallic SolidsPhysical Review Letters, 1958