DocumentCode :
1239276
Title :
Emission and capture of electrons in multiquantum-well structures
Author :
Rosencher, E. ; Vinter, B. ; Luc, F. ; Thibaudeau, L. ; Bois, P. ; Nagle, J.
Author_Institution :
Lab. Central de Recherches, Thomson-CSF, Orsay, France
Volume :
30
Issue :
12
fYear :
1994
fDate :
12/1/1994 12:00:00 AM
Firstpage :
2875
Lastpage :
2888
Abstract :
The mechanisms of unipolar emission and capture of electrons are studied in multiquantum-well structures in relation with the quantum-well infrared photoconductors (QWIP´s). We clarify the roles played by the physical parameters which appear in the different QWIP photoresponse models, i.e., the photoconductive and the photoemissive ones. We then describe the experimental procedures which allow us to independently determine these different parameters: deep level optical spectroscopy for the electron emission probability, impedance spectroscopy for the quantum-well capture velocity and thermal emission time, as well as the infrared photoconductive gain for the unipolar electron capture time. The measured dependence of these parameters on photon energy and electric field sheds light on the microscopic physical phenomena which are involved in quantum-well infrared photodetection. Theoretical results on optical phonon mediated transitions in an applied electric field from barrier to well states show good agreement with experiment at low fields but less dependence on the field. Finally, this theoretical approach allows us to connect the different parameters and solve the apparent discrepancy between the QWIP photoresponse models
Keywords :
electron capture; photoconductivity; photoemission; probability; semiconductor quantum wells; QWIP photoresponse models; applied electric field; deep level optical spectroscopy; electric field; electron capture; electron emission; electron emission probability; impedance spectroscopy; infrared photoconductive gain; microscopic physical phenomena; multiquantum-well structures; optical phonon mediated transitions; photon energy; photoresponse models; physical parameters; quantum-well capture velocity; quantum-well infrared photoconductors; thermal emission time; unipolar electron capture time; unipolar emission; Electric variables measurement; Electrochemical impedance spectroscopy; Electron emission; Electron optics; Energy measurement; Infrared spectra; Photoconductivity; Quantum wells; Radioactive decay; Stimulated emission;
fLanguage :
English
Journal_Title :
Quantum Electronics, IEEE Journal of
Publisher :
ieee
ISSN :
0018-9197
Type :
jour
DOI :
10.1109/3.362722
Filename :
362722
Link To Document :
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