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  4. Self-organized three-dimensional nanostructured architectures in bulk GaN generated by spatial modulation of doping
 
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Self-organized three-dimensional nanostructured architectures in bulk GaN generated by spatial modulation of doping

Publikationstyp
Journal Article
Date Issued
2016-02-18
Sprache
English
Author(s)
Tiginyanu, Ion  
Stevens-Kalceff, Marion A.  
Sarua, Andrei  
Braniste, Tudor  
Monaico, Eduard  
Popa, Veaceslav  
Andrade, Hugo D.  
Thomas, James O.  
Raevschi, Simion  
Schulte, Karl  
Adelung, Rainer  
Institut
Kunststoffe und Verbundwerkstoffe M-11  
TORE-URI
http://hdl.handle.net/11420/3045
Journal
ECS journal of solid state science and technology  
Volume
5
Issue
5
Start Page
P218
End Page
P227
Citation
ECS Journal of Solid State Science and Technology 5 (5): P218-P227 (2016)
Publisher DOI
10.1149/2.0091605jss
Scopus ID
2-s2.0-84994386128
Publisher
ECS
Self-organized 3D nanostructured architectures including quasi-ordered concentric hexagonal structures generated during the growth of single crystalline n-GaN substrates by hydride vapor phase epitaxy (HVPE) are reported. The study of as-grown samples by using Kelvin Probe Force Microscopy shows that the formation of self-organized architectures can be attributed to fine modulation of doping related to the spatial distribution of impurities. The specific features of nanostructured architectures involved have been brought to light by using electrochemical and photoelectrochemical etching techniques which are highly sensitive to local doping. The analysis of the results shows that the formation of self-organized spatial architectures in the process of HVPE is caused by the generation of V-pits and their subsequent overgrowth accompanied by the growth in variable direction. It is demonstrated for the first time that the electrical and luminescence properties of HVPE-grown GaN are spatially modulated throughout, including islands between overgrown V-pit regions. The dependence of doping upon growth direction is confirmed by the micro-cathodoluminescence characterization of HVPE-grown pencil-like microcrystals exposing various crystallographic planes along the tip. These results are indicative of new possibilities for defect engineering in gallium nitride and for three-dimensional spatial nanostructuring of this important electronic material by controlling the growth direction.
DDC Class
600: Technik
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