Strain and luminescence properties of hexagonal hillocks in N-polar GaN
Bruckbauer, Jochen and Cios, Grzegorz and Sarua, Andrei and Feng, Peng and Wang, Tao and Hourahine, Ben and Winkelmann, Aimo and Trager-Cowan, Carol and Martin, Robert (2025) Strain and luminescence properties of hexagonal hillocks in N-polar GaN. Journal of Applied Physics. ISSN 0021-8979 (In Press)
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Abstract
Owing to its unique properties, N-polar GaN offers several advantages over Ga-polar GaN, particularly for applications in high power electronics. However, the growth of high-quality N-polar material is challenging. One dominant issue is the increased surface roughness, due to the occurrence of hexagonal-shaped hillocks, referred to as hexagons, on the material’s surface. Although, there are different methods to reduce the density of these hillocks, such as the use of vicinal substrates or optimum growth conditions, the properties of such hillocks are not extensively studied. Here, we investigate the crystallographic and luminescence properties of these hexagonal features using the techniques of electron backscatter diffraction (EBSD) and cathodoluminescence (CL) hyperspectral imaging in the scanning electron microscope combined with micro-Raman mapping. CL revealed increased light emission from the top of the hexagons compared with the surrounding material. Additionally, dark spots in intensity images, associated with non-radiative recombination at threading dislocations, could be resolved on top of the hexagons, but not in the surrounding area, implying improved material quality of the hexagons. Extensive strain analysis using EBSD revealed that the hexagons are composed of equivalent triangular segments with tensile strain along symmetrically equivalent <11-20> directions. As the hexagons become larger, this strain increases with distance from the centre. This was confirmed by mapping the Raman E2 (high) mode. Overall this provides crucial insight into the strain state of these hexagonal features
ORCID iDs
Bruckbauer, Jochen



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Item type: Article ID code: 92350 Dates: DateEvent16 March 2025Published16 March 2025AcceptedSubjects: UNSPECIFIED Department: Faculty of Science > Physics
Strategic Research Themes > Measurement Science and Enabling Technologies
Technology and Innovation Centre > Photonics
Technology and Innovation Centre > BionanotechnologyDepositing user: Pure Administrator Date deposited: 17 Mar 2025 11:33 Last modified: 19 Mar 2025 04:15 URI: https://strathprints.strath.ac.uk/id/eprint/92350