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research article

Multilayer porous structures of HVPE and MOCVD grown GaN for photonic applications

Braniste, T.
•
Ciers, Joachim  
•
Monaico, Ed.
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2017
Superlattices And Microstructures

In this paper we report on a comparative study of electrochemical processes for the preparation of multilayer porous structures in hydride vapor phase epitaxy (HVPE) and metal organic chemical vapor phase deposition (MOCVD) grown GaN. It was found that in HVPE-grown GaN, multilayer porous structures are obtained due to self-organization processes leading to a fine modulation of doping during the crystal growth. However, these processes are not totally under control. Multilayer porous structures with a controlled design have been produced by optimizing the technological process of electrochemical etching in MOCVD-grown samples, consisting of five pairs of thin layers with alternating-doping profiles. The samples have been characterized by SEM imaging, photoluminescence spectroscopy, and micro-reflectivity measurements, accompanied by transfer matrix analysis and simulations by a method developed for the calculation of optical reflection spectra. We demonstrate the applicability of the produced structures for the design of Bragg reflectors. (C) 2016 Elsevier Ltd. All rights reserved.

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Type
research article
DOI
10.1016/j.spmi.2016.12.041
Web of Science ID

WOS:000394629000027

Author(s)
Braniste, T.
Ciers, Joachim  
Monaico, Ed.
Martin, D.
Carlin, J. -F.  
Ursaki, V. V.
Sergentu, V. V.
Tiginyanu, I. M.
Grandjean, N.  
Date Issued

2017

Publisher

Academic Press Ltd- Elsevier Science Ltd

Published in
Superlattices And Microstructures
Volume

102

Start page

221

End page

234

Subjects

GaN

•

Multilayer porous structures

•

Electrochemical etching

•

Micro-reflectivity measurements

•

Transfer matrix analysis

•

Bragg reflectors

Editorial or Peer reviewed

REVIEWED

Written at

OTHER

EPFL units
LASPE  
Available on Infoscience
May 1, 2017
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/136631
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