Dislocation density-dependent quality factors in InGaN quantum dot containing microdisks
Haitham A. R. El-Ella, Fabian Rol, Menno J. Kappers, Kasey J. Russell, Evelyn L. Hu, Rachel A. Oliver
Abstract
Haitham A. R. El-Ella, Fabian Rol, Menno J. Kappers, Kasey J. Russell, Evelyn L. Hu, Rachel A. Oliver
Abstract
Microdisks incorporating InGaN quantum dots were fabricated using SiO2 microspheres as a hard mask in conjunction with a photoelectrochemical etch step from a structure containing a sacrificial InGaN/InGaN superlattice. Formation of microdisks from two near-identical structures with differing dislocation densities was carried out and investigated using microphotoluminescence. This confirmed the existence of quantum dots through the presence of resolution limited spectral lines and showed a clear correlation between the resulting modes quality factors and the dislocation densities within the disks. The disks with higher dislocation densities showed up to 80% lower quality factors than the low dislocation density disks.
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Microdisks incorporating InGaN quantum dots were fabricated using SiO2 microspheres as a hard mask in conjunction with a photoelectrochemical etch step from a structure containing a sacrificial InGaN/InGaN superlattice. Formation of microdisks from two near-identical structures with differing dislocation densities was carried out and investigated using microphotoluminescence. This confirmed the existence of quantum dots through the presence of resolution limited spectral lines and showed a clear correlation between the resulting modes quality factors and the dislocation densities within the disks. The disks with higher dislocation densities showed up to 80% lower quality factors than the low dislocation density disks.
Key concepts: Dislocation, Superlattice, Materials science, Quantum dot, Optoelectronics, Quality (philosophy), Condensed matter physics, Composite material