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Elemental Distribution and Structural Characterization of GaN/InGaN Core-Shell Single Nanowires by Hard X-ray Synchrotron Nanoprobes

Improvements in the spatial resolution of synchrotron-based X-ray probes have reached the nano-scale and they, nowadays, constitute a powerful platform for the study of semiconductor nanostructures and nanodevices that provides high sensitivity without destroying the material. Three complementary ha...

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Autores principales: Secco, Eleonora, Mengistu, Heruy Taddese, Segura-Ruíz, Jaime, Martínez-Criado, Gema, García-Cristóbal, Alberto, Cantarero, Andrés, Foltynski, Bartosz, Behmenburg, Hannes, Giesen, Christoph, Heuken, Michael, Garro, Núria
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6566811/
https://www.ncbi.nlm.nih.gov/pubmed/31058842
http://dx.doi.org/10.3390/nano9050691
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author Secco, Eleonora
Mengistu, Heruy Taddese
Segura-Ruíz, Jaime
Martínez-Criado, Gema
García-Cristóbal, Alberto
Cantarero, Andrés
Foltynski, Bartosz
Behmenburg, Hannes
Giesen, Christoph
Heuken, Michael
Garro, Núria
author_facet Secco, Eleonora
Mengistu, Heruy Taddese
Segura-Ruíz, Jaime
Martínez-Criado, Gema
García-Cristóbal, Alberto
Cantarero, Andrés
Foltynski, Bartosz
Behmenburg, Hannes
Giesen, Christoph
Heuken, Michael
Garro, Núria
author_sort Secco, Eleonora
collection PubMed
description Improvements in the spatial resolution of synchrotron-based X-ray probes have reached the nano-scale and they, nowadays, constitute a powerful platform for the study of semiconductor nanostructures and nanodevices that provides high sensitivity without destroying the material. Three complementary hard X-ray synchrotron techniques at the nanoscale have been applied to the study of individual nanowires (NWs) containing non-polar GaN/InGaN multi-quantum-wells. The trace elemental sensitivity of X-ray fluorescence allows one to determine the In concentration of the quantum wells and their inhomogeneities along the NW. It is also possible to rule out any contamination from the gold nanoparticle catalyst employed during the NW growth. X-ray diffraction and X-ray absorption near edge-structure probe long- and short-range order, respectively, and lead us to the conclusion that while the GaN core and barriers are fully relaxed, there is an induced strain in InGaN layers corresponding to a perfect lattice matching with the GaN core. The photoluminescence spectrum of non-polar InGaN quntum wells is affected by strain and the inhomogeneous alloy distribution but still exhibits a reasonable 20% relative internal quantum efficiency.
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spelling pubmed-65668112019-06-17 Elemental Distribution and Structural Characterization of GaN/InGaN Core-Shell Single Nanowires by Hard X-ray Synchrotron Nanoprobes Secco, Eleonora Mengistu, Heruy Taddese Segura-Ruíz, Jaime Martínez-Criado, Gema García-Cristóbal, Alberto Cantarero, Andrés Foltynski, Bartosz Behmenburg, Hannes Giesen, Christoph Heuken, Michael Garro, Núria Nanomaterials (Basel) Article Improvements in the spatial resolution of synchrotron-based X-ray probes have reached the nano-scale and they, nowadays, constitute a powerful platform for the study of semiconductor nanostructures and nanodevices that provides high sensitivity without destroying the material. Three complementary hard X-ray synchrotron techniques at the nanoscale have been applied to the study of individual nanowires (NWs) containing non-polar GaN/InGaN multi-quantum-wells. The trace elemental sensitivity of X-ray fluorescence allows one to determine the In concentration of the quantum wells and their inhomogeneities along the NW. It is also possible to rule out any contamination from the gold nanoparticle catalyst employed during the NW growth. X-ray diffraction and X-ray absorption near edge-structure probe long- and short-range order, respectively, and lead us to the conclusion that while the GaN core and barriers are fully relaxed, there is an induced strain in InGaN layers corresponding to a perfect lattice matching with the GaN core. The photoluminescence spectrum of non-polar InGaN quntum wells is affected by strain and the inhomogeneous alloy distribution but still exhibits a reasonable 20% relative internal quantum efficiency. MDPI 2019-05-03 /pmc/articles/PMC6566811/ /pubmed/31058842 http://dx.doi.org/10.3390/nano9050691 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Secco, Eleonora
Mengistu, Heruy Taddese
Segura-Ruíz, Jaime
Martínez-Criado, Gema
García-Cristóbal, Alberto
Cantarero, Andrés
Foltynski, Bartosz
Behmenburg, Hannes
Giesen, Christoph
Heuken, Michael
Garro, Núria
Elemental Distribution and Structural Characterization of GaN/InGaN Core-Shell Single Nanowires by Hard X-ray Synchrotron Nanoprobes
title Elemental Distribution and Structural Characterization of GaN/InGaN Core-Shell Single Nanowires by Hard X-ray Synchrotron Nanoprobes
title_full Elemental Distribution and Structural Characterization of GaN/InGaN Core-Shell Single Nanowires by Hard X-ray Synchrotron Nanoprobes
title_fullStr Elemental Distribution and Structural Characterization of GaN/InGaN Core-Shell Single Nanowires by Hard X-ray Synchrotron Nanoprobes
title_full_unstemmed Elemental Distribution and Structural Characterization of GaN/InGaN Core-Shell Single Nanowires by Hard X-ray Synchrotron Nanoprobes
title_short Elemental Distribution and Structural Characterization of GaN/InGaN Core-Shell Single Nanowires by Hard X-ray Synchrotron Nanoprobes
title_sort elemental distribution and structural characterization of gan/ingan core-shell single nanowires by hard x-ray synchrotron nanoprobes
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6566811/
https://www.ncbi.nlm.nih.gov/pubmed/31058842
http://dx.doi.org/10.3390/nano9050691
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