Title :
Submillimeter p-Ge laser using a Voigt-configured permanent magnet
Author :
Park, Kijun ; Peale, Robert E. ; Weidner, Henry ; Kim, Jin J.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Central Florida, Orlando, FL, USA
fDate :
7/1/1996 12:00:00 AM
Abstract :
A p-Ge laser at 170-200 μm wavelengths in Voigt configuration using a regular permanent magnet is reported. Results are compared with those obtained using a Faraday-configured superconducting magnet. Emission is observed over a wider range of electric-field magnitude in Voigt configuration at a given magnetic field. Time-resolved emission studies reveal unusual pulse dynamics which depend on the magnitude and duration of the applied electric field. Spectral content, Gaussian-beam profiles, and polarization are essentially independent of these temporal effects. A significant repetition-rate increase is found using copper heat sinks. An increased emission-pulse delay with increasing initial-sample temperature and the temperature independence of the emission quench time are both explained by Joule heating of the laser medium. Lasing persists above 10 K, raising the possibility of a practical p-Ge laser without need for liquid helium as a coolant
Keywords :
electric fields; germanium; infrared sources; magnetic fields; magneto-optical effects; permanent magnets; semiconductor lasers; submillimetre wave lasers; μm wavelengths; 10 K; 170 to 200 mum; Faraday-configured superconducting magnet; Gaussian-beam profiles; Ge; Joule heating; Voigt configuration; Voigt-configured permanent magnet; applied electric field; copper heat sinks; electric-field magnitude; emission quench time; emission-pulse delay; initial-sample temperature; laser medium; magnetic field; pulse dynamics; regular permanent magnet; repetition-rate increase; spectral content; submillimeter p-Ge laser; temperature independence; temporal effects; time-resolved emission studies; Copper; Delay effects; Gaussian processes; Heat sinks; Heating; Magnetic fields; Permanent magnets; Polarization; Superconducting magnets; Temperature;
Journal_Title :
Quantum Electronics, IEEE Journal of