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Composite GaN–C–Ga (“GaCN”) Layers with Tunable Refractive Index

[Image: see text] This article describes novel composite thin films consisting of GaN, C, and Ga (termed “GaCN”, as an analogue to BCN and other carbonitrides) as a prospective material for future optical applications. This is due to their tunable refractive index that depends on the carbon content....

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Autores principales: Banerjee, Sourish, Onnink, Arnoud J., Dutta, Satadal, Aarnink, Antonius A. I., Gravesteijn, Dirk J., Kovalgin, Alexey Y.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2018
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6311680/
https://www.ncbi.nlm.nih.gov/pubmed/30613311
http://dx.doi.org/10.1021/acs.jpcc.8b09142
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author Banerjee, Sourish
Onnink, Arnoud J.
Dutta, Satadal
Aarnink, Antonius A. I.
Gravesteijn, Dirk J.
Kovalgin, Alexey Y.
author_facet Banerjee, Sourish
Onnink, Arnoud J.
Dutta, Satadal
Aarnink, Antonius A. I.
Gravesteijn, Dirk J.
Kovalgin, Alexey Y.
author_sort Banerjee, Sourish
collection PubMed
description [Image: see text] This article describes novel composite thin films consisting of GaN, C, and Ga (termed “GaCN”, as an analogue to BCN and other carbonitrides) as a prospective material for future optical applications. This is due to their tunable refractive index that depends on the carbon content. The composites are prepared by introducing alternating pulses of trimethylgallium (TMG) and ammonia (NH(3)) on silicon substrates to mimic an atomic layer deposition process. Because the GaCN material is hardly reported to the best of our knowledge, a comprehensive characterization is performed to investigate into its chemical nature, primarily to determine whether or not it exists as a single-phase material. It is revealed that GaCN is a composite, consisting of phase-segregated, nanoscale clusters of wurtzitic GaN polycrystals, in addition to inclusions of carbon, nitrogen, and gallium, which are chemically bonded into several forms, but not belonging to the GaN crystals itself. By varying the deposition temperature between 400 and 600 °C and the NH(3) partial pressure between 0.7 × 10(–3) and 7.25 mbar, layers with a wide compositional range of Ga, C, and N are prepared. The role of carbon on the GaCN optical properties is significant: an increase of the refractive index from 2.19 at 1500 nm (for carbon-free polycrystalline GaN) to 2.46 (for GaCN) is achieved by merely 10 at. % of carbon addition. The presence of sp(2)-hybridized C=N clusters and carbon at the interface of the GaN polycrystals are proposed to determine their optical properties. Furthermore, the formation of the GaN polycrystals in the composite occurs through a TMG:NH(3) surface-adduct assisted pathway, whereas the inclusions of carbon, nitrogen, and gallium are formed by the thermal decomposition of the chemisorbed TMG species.
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spelling pubmed-63116802019-01-02 Composite GaN–C–Ga (“GaCN”) Layers with Tunable Refractive Index Banerjee, Sourish Onnink, Arnoud J. Dutta, Satadal Aarnink, Antonius A. I. Gravesteijn, Dirk J. Kovalgin, Alexey Y. J Phys Chem C Nanomater Interfaces [Image: see text] This article describes novel composite thin films consisting of GaN, C, and Ga (termed “GaCN”, as an analogue to BCN and other carbonitrides) as a prospective material for future optical applications. This is due to their tunable refractive index that depends on the carbon content. The composites are prepared by introducing alternating pulses of trimethylgallium (TMG) and ammonia (NH(3)) on silicon substrates to mimic an atomic layer deposition process. Because the GaCN material is hardly reported to the best of our knowledge, a comprehensive characterization is performed to investigate into its chemical nature, primarily to determine whether or not it exists as a single-phase material. It is revealed that GaCN is a composite, consisting of phase-segregated, nanoscale clusters of wurtzitic GaN polycrystals, in addition to inclusions of carbon, nitrogen, and gallium, which are chemically bonded into several forms, but not belonging to the GaN crystals itself. By varying the deposition temperature between 400 and 600 °C and the NH(3) partial pressure between 0.7 × 10(–3) and 7.25 mbar, layers with a wide compositional range of Ga, C, and N are prepared. The role of carbon on the GaCN optical properties is significant: an increase of the refractive index from 2.19 at 1500 nm (for carbon-free polycrystalline GaN) to 2.46 (for GaCN) is achieved by merely 10 at. % of carbon addition. The presence of sp(2)-hybridized C=N clusters and carbon at the interface of the GaN polycrystals are proposed to determine their optical properties. Furthermore, the formation of the GaN polycrystals in the composite occurs through a TMG:NH(3) surface-adduct assisted pathway, whereas the inclusions of carbon, nitrogen, and gallium are formed by the thermal decomposition of the chemisorbed TMG species. American Chemical Society 2018-12-03 2018-12-27 /pmc/articles/PMC6311680/ /pubmed/30613311 http://dx.doi.org/10.1021/acs.jpcc.8b09142 Text en Copyright © 2018 American Chemical Society This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Banerjee, Sourish
Onnink, Arnoud J.
Dutta, Satadal
Aarnink, Antonius A. I.
Gravesteijn, Dirk J.
Kovalgin, Alexey Y.
Composite GaN–C–Ga (“GaCN”) Layers with Tunable Refractive Index
title Composite GaN–C–Ga (“GaCN”) Layers with Tunable Refractive Index
title_full Composite GaN–C–Ga (“GaCN”) Layers with Tunable Refractive Index
title_fullStr Composite GaN–C–Ga (“GaCN”) Layers with Tunable Refractive Index
title_full_unstemmed Composite GaN–C–Ga (“GaCN”) Layers with Tunable Refractive Index
title_short Composite GaN–C–Ga (“GaCN”) Layers with Tunable Refractive Index
title_sort composite gan–c–ga (“gacn”) layers with tunable refractive index
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6311680/
https://www.ncbi.nlm.nih.gov/pubmed/30613311
http://dx.doi.org/10.1021/acs.jpcc.8b09142
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