Field-Effect Light Modulation in Germanium
- 1 June 1963
- journal article
- research article
- Published by AIP Publishing in Journal of Applied Physics
- Vol. 34 (6) , 1743-1748
- https://doi.org/10.1063/1.1702671
Abstract
Infrared light that is sent through a germanium prismatoid so that it is reflected several times internally, becomes modulated in intensity if the space‐charge layers along the reflecting surfaces are changed by means of the field effect. The phase angle between the modulation signal and the field voltage changes by π when the surface is changed from n to p type, or vice versa, by change of the gaseous ambient. The modulation signal shows twice the frequency of the field voltage in the transition region between n and p type. This, together with other observations such as the waveform analysis of the modulation signal and the dependence of the modulation depth upon field voltage, indicates that the modulation is caused by free‐carrier absorption in the space‐charge layer, which follows roughly the master curve of the field‐effect surface conductivity. The results are interpreted in terms of the field‐effect mobility.This publication has 15 references indexed in Scilit:
- Phase Shift on Reflection at a Double-Layer SystemJournal of the Optical Society of America, 1962
- Optical Spectrum of the Semiconductor Surface States from Frustrated Total Internal ReflectionsPhysical Review B, 1962
- Undamaged Germanium Surfaces of High Optical QualityJournal of the Electrochemical Society, 1962
- Attenuated total reflectionSpectrochimica Acta, 1961
- Study of Physics and Chemistry of Surfaces from Frustrated Total Internal ReflectionsPhysical Review Letters, 1960
- Field Effect in Germanium at High FrequenciesPhysical Review B, 1957
- Effective Carrier Mobility in Surface-Space Charge LayersPhysical Review B, 1955
- Absorption of Infrared Light by Free Carriers in GermaniumPhysical Review B, 1953
- Optical Studies of Injected Carriers. I. Infrared Absorption in GermaniumPhysical Review B, 1953
- New Infrared Absorption Bands in-Type GermaniumPhysical Review B, 1952