DocumentCode
1377685
Title
Stimulated IR emission by quantum magnetoelectric photoeffect of narrow-gap semiconductors
Author
Morimoto, T. ; Chiba, M. ; Kido, G.
Author_Institution
Inst. of Adv. Energy, Kyoto Univ., Japan
Volume
144
Issue
5
fYear
1997
fDate
10/1/1997 12:00:00 AM
Firstpage
305
Lastpage
314
Abstract
A new type of lasing action of bulk semiconductors which are tunable in the quantum limit has been demonstrated in n-InSb. The population inversion has been achieved by passing a DC current J through the sample subjected to a transverse high magnetic field H up to 22 T. At the quantum limit, the critical current density J, for lasing becomes as low as e.g. ~17A/cm2 for H=10 T at 43 K, owing to the extremely high value of the gain, which originates from the singularity of the one-dimension-like density of states caused by the application of high magnetic fields. It has been pointed out that a small number of electrons populated occasionally in high energy states can trigger impact ionisation to cause the population inversion, acquiring the kinetic energy Δε, which is larger than the optical-phonon energy hωop, from electromagnetic fields. The excitation process is closely related to the reduction in the bandgap energy, ~-Δε, observed in crossed electric and magnetic fields at the quantum limit. Emission spectroscopy has effectively been applied to determine the band parameters at room temperature as well as at low temperatures
Keywords
III-V semiconductors; current density; energy states; indium compounds; infrared sources; laser tuning; magneto-optical effects; magnetoelectric effects; population inversion; quantum well lasers; stimulated emission; 22 T; 43 K; DC current; InSb; bandgap energy; bulk semiconductors; critical current density; electromagnetic fields; emission spectroscopy; extremely high value; high energy states; high magnetic fields; impact ionisation; kinetic energy; laser tuning; lasing action; n-InSb; narrow-gap semiconductors; one-dimension-like density of states; optical-phonon energy; population inversion; quantum limit; quantum magnetoelectric photoeffect; stimulated IR emission; transverse high magnetic field;
fLanguage
English
Journal_Title
Optoelectronics, IEE Proceedings -
Publisher
iet
ISSN
1350-2433
Type
jour
DOI
10.1049/ip-opt:19971234
Filename
674333
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