Title :
Array-Format Microchip Semiconductor Disk Lasers
Author :
Laurand, Nicolas ; Lee, Chee-Leong ; Gu, Erdan ; Hastie, Jennifer E. ; Kemp, Alan J. ; Calvez, Stephane ; Dawson, Martin D.
Author_Institution :
Inst. of Photonics, Strathclyde Univ., Glasgow
Abstract :
We report a detailed study of an array-format 1.055- mum microchip semiconductor disk laser which uses a microlens-patterned diamond both as an array of stabilizing output coupling mirrors and a heatspreader. A thermal study of the devices, using a finite element analysis, is carried out and confirms the thermal management capabilities and power scalability of this microlensed diamond configuration. This design is then exploited to perform a systematic study on a set of microchip lasers having the same semiconductor structure but microlenses with differing characteristics. The transverse mode characteristics of individual semiconductor disk lasers are found to depend on the mode-matching condition and on the microlens aperture size. Mode-matched single-device emission in the fundamental mode (M2 ~ 1.1) with a pump-limited output power of 70 mW is demonstrated. The experimental measurement of the thermal resistance of the device is also shown to agree with the finite element analysis. Finally, array operation, while pumping with a single beam, is reported.
Keywords :
finite element analysis; laser modes; microchip lasers; microlenses; mode matching; optical arrays; optical pumping; semiconductor lasers; coupling mirrors; finite element analysis; heatspreader; microchip semiconductor disk lasers; microlens-patterned diamond; mode matching; power 70 mW; power scalability; pumping; thermal management capabilities; thermal resistance; wavelength 1.55 mum; Finite element methods; Laser modes; Lenses; Microchip lasers; Microoptics; Optical arrays; Semiconductor laser arrays; Semiconductor lasers; Thermal management; Thermal resistance; Laser arrays; microchip laser; microlens; mode control; semiconductor disk lasers (SDL); vertical external-cavity surface-emitting lasers (VECSEL);
Journal_Title :
Quantum Electronics, IEEE Journal of
DOI :
10.1109/JQE.2008.2001909