4.4 Article

Growth of compressively strained GaxIn1_xAsyP1_y quantum wells for 690-730 nm laser emission

Journal

JOURNAL OF CRYSTAL GROWTH
Volume 604, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.jcrysgro.2022.127055

Keywords

A3; Metalorganic vapor phase epitaxy; A1; Phase separation; X-ray diffraction; Photoluminescence; Electroluminescence; B1; GaInAsP

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This study focuses on achieving laser emission around 700 nm by using GaxIn1_xAsyP1_y material. By controlling the strain and thickness of the material, compressively strained GaxIn1_xAsyP1_y quantum wells with the desired wavelength have been successfully grown, and high power laser output has been achieved.
AlxGa1_xAs-based lasers are typically used for emission wavelengths of 730 nm and above, e.g. using GaAsyP1_y quantum wells (QW), while lasers emitting below 700 nm rely on (AlxGa1_x)0.5In0.5P in combination with GaxIn1_xP quantum wells. The 690 nm to 730 nm spectral range could basically be addressed from both ends, but this is practically limited by the tensile (GaAsyP1_y) and compressive (GaxIn1_xP) strains necessary to reach this spectral range. In this work we report on our efforts in growing GaxIn1_xAsyP1_y for emission around 700 nm. As this quaternary material is prone to phase separation, we first studied the growth of lattice matched bulk layers. We show that phase separation is kinetically triggered and can be avoided by staying below a critical thickness. Compressively strained GaxIn1_xAsyP1_y QWs can be grown if strain is kept below a critical value. The quantum well strain, which drives kinetic phase separation, is adjusted by a combination of X-ray diffraction and elec-troluminescence evaluated by modelling of the transition energies. Finally, we present LIV characteristics of uncoated edge-emitting broad area lasers (100 x 1000 mu m2) reaching output powers up to P = 900 mW at I = 2 A for emission wavelengths ranging from 690 to 726 nm.

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