Title :
Theory of Resonant Cavity-Enhanced Detection Applied to Thermal Infrared Light
Author :
Rosencher, Emmanuel ; Haidar, Riad
Author_Institution :
Ecole Polytechnique, Palaiseau
fDate :
7/1/2007 12:00:00 AM
Abstract :
The performances of thermal infrared light detector based on a model system of resonant semiconductor microcavities are theoretically investigated. An original transfer matrix formalism of cavity enhanced absorption is presented which makes use of the small thickness of the absorbing layer compared to the light wavelengths. This formalism yields exact expressions which take standing wave effects into account in a built-in way. Approximations lead to tractable expressions which allow deriving asymptotic behaviors and general trends. The tradeoff between large cavity absorption enhancement and reduction of the detector bandwidth is particularly studied, leading to a gain-bandwidth product analysis. Approximated expressions for detectors based on resonant (i.e type I quantum dots) and nonresonant (bulk or type II quantum wells) optical transitions are also derived, which are physically meaningful and may be conveniently used for engineering purposes. It is found that the limitations due to the gain-bandwidth product conservation can be overcome. However, these cavity enhancement effects are only important for very small quantum efficiency for which the finesse of the microcavity is not seriously deteriorated.
Keywords :
cavity resonators; infrared detectors; microcavities; semiconductor quantum dots; semiconductor quantum wells; absorbing layer; asymptotic behaviors; gain-bandwidth product analysis; nonresonant optical transitions; original transfer matrix formalism; quantum dots; quantum efficiency; quantum wells; resonant cavity-enhanced detection; resonant semiconductor microcavities; standing wave effects; thermal infrared light detector; Bandwidth; Electromagnetic wave absorption; Infrared detectors; Microcavities; Optical resonators; Optical superlattices; Quantum dots; Quantum well devices; Resonance; Semiconductor superlattices; Cavity resonators; infrared detectors; quantum-well (QW) devices;
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2007.898845