Quantum transport and phonon emission of nonequilibrium hot electrons
- 15 May 1990
- journal article
- research article
- Published by American Physical Society (APS) in Physical Review B
- Vol. 41 (14) , 10250-10253
- https://doi.org/10.1103/physrevb.41.10250
Abstract
Experimental evidence and analysis is presented which suggests that a current stream of tunneling electrons, even after suffering inelastic collisions, is able to transmit coherently through potential-barrier structures. This interpretation leads to the conclusion that coherent transmission is a single-particle interference property, and that the popular Fabry-Pérot approach to coherent tunneling might be inappropriate. We use the single-particle interference property of the tunneling electrons to probe the hot-electron energy distribution, and observe experimentally multiple-phonon replicas, which are in remarkable agreement with the result of Monte Carlo simulations performed by Baranger et al. for similar structures.Keywords
This publication has 15 references indexed in Scilit:
- Electron tunneling in single- and double-barrier structuresPhysical Review B, 1989
- Quasiclassical behavior of ballistic electrons in a perpendicular magnetic fieldPhysical Review B, 1989
- Effect of inelastic scattering on resonant and sequential tunneling in double barrier heterostructuresApplied Physics Letters, 1987
- Ballistic peaks in the distribution function from intervalley transfer in a submicron structureApplied Physics Letters, 1987
- Tunneling hot-electron transfer amplifier: A hot-electron GaAs device with current gainApplied Physics Letters, 1985
- Direct Observation of Ballistic Transport in GaAsPhysical Review Letters, 1985
- Injected-Hot-Electron Transport in GaAsPhysical Review Letters, 1985
- Frequency limit of double-barrier resonant-tunneling oscillatorsApplied Physics Letters, 1985
- Subpicosecond Time-Resolved Raman Spectroscopy of LO Phonons in GaAsPhysical Review Letters, 1985
- High-field distribution function in GaAsIEEE Transactions on Electron Devices, 1966