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Vapor-Transport Synthesis and Annealing Study of Zn(x)Mg(1–x)O Nanowire Arrays for Selective, Solar-Blind UV-C Detection
[Image: see text] This work uniquely reports the synthesis of Zn(x)Mg(1–x)O nanowires and submicron columns by utilizing a traditional carbothermal reduction process toward forming ZnO nanowire ultraviolet detectors, while simultaneously utilizing Mg(3)N(2) as the source of Mg. To investigate the re...
Autores principales: | , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
American Chemical Society
2018
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Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6641753/ https://www.ncbi.nlm.nih.gov/pubmed/31458706 http://dx.doi.org/10.1021/acsomega.7b01362 |
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author | Azhar, Ebraheem Ali Vanjaria, Jignesh Ahn, Seungho Fou, Thomas Dey, Sandwip K. Salagaj, Tom Sbrockey, Nick Tompa, Gary S. Yu, Hongbin |
author_facet | Azhar, Ebraheem Ali Vanjaria, Jignesh Ahn, Seungho Fou, Thomas Dey, Sandwip K. Salagaj, Tom Sbrockey, Nick Tompa, Gary S. Yu, Hongbin |
author_sort | Azhar, Ebraheem Ali |
collection | PubMed |
description | [Image: see text] This work uniquely reports the synthesis of Zn(x)Mg(1–x)O nanowires and submicron columns by utilizing a traditional carbothermal reduction process toward forming ZnO nanowire ultraviolet detectors, while simultaneously utilizing Mg(3)N(2) as the source of Mg. To investigate the relationship between Mg content in the ZnO lattice and the cutoff wavelength for high spectral responsivity, the nanowires were annealed in a series of designed conditions, whereas chemical, nanostructural, and optoelectronic characteristics were compared before and after treatment. Postanneal scanning electron micrographs revealed a reduction of the average ensemble nanowire dimensions, which was correlated to the modification of ZnO lattice parameters stemming from Zn(2+) dissociation and Mg(2+) substitution (confirmed via Raman spectroscopy). The analysis of cathodoluminescence spectra revealed a blueshift of the peak alloy band-edge emission along with a redshift of the ZnO band-edge emission; and both were found to be strong functions of the annealing temperature. The conversion of Zn(2)SiO(4) to Mg(2)SiO(4) (in O(2)) and MgSiO(3) (in Ar) was found to correspond to transformations (shifting and scaling) of high-energy luminescence peaks and was confirmed with X-ray diffraction analysis. The tunability of the cutoff photodetection wavelength was evaluated as the nanowire arrays exhibited selective absorption by retaining elevated conduction under high-energy UV-C irradiation after thermal treatment but exhibiting suppressed conductivity and a single order of magnitude reduction in both spectral responsivity (R(λ)) and photoconductive gain (G) under UV-A illumination. Noise analysis revealed that the variation of detectivity (D*) depended on the regime of ultraviolet irradiation, and that these variations are related to thermal noise resulting from oxygen-related defects on both nanowire and substrate surfaces. These results suggest a minor design tradeoff between the noise characteristics of thermally treated ZnMgO nanowire array UV detectors and the tunability of their spectral sensitivity. |
format | Online Article Text |
id | pubmed-6641753 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2018 |
publisher | American Chemical Society |
record_format | MEDLINE/PubMed |
spelling | pubmed-66417532019-08-27 Vapor-Transport Synthesis and Annealing Study of Zn(x)Mg(1–x)O Nanowire Arrays for Selective, Solar-Blind UV-C Detection Azhar, Ebraheem Ali Vanjaria, Jignesh Ahn, Seungho Fou, Thomas Dey, Sandwip K. Salagaj, Tom Sbrockey, Nick Tompa, Gary S. Yu, Hongbin ACS Omega [Image: see text] This work uniquely reports the synthesis of Zn(x)Mg(1–x)O nanowires and submicron columns by utilizing a traditional carbothermal reduction process toward forming ZnO nanowire ultraviolet detectors, while simultaneously utilizing Mg(3)N(2) as the source of Mg. To investigate the relationship between Mg content in the ZnO lattice and the cutoff wavelength for high spectral responsivity, the nanowires were annealed in a series of designed conditions, whereas chemical, nanostructural, and optoelectronic characteristics were compared before and after treatment. Postanneal scanning electron micrographs revealed a reduction of the average ensemble nanowire dimensions, which was correlated to the modification of ZnO lattice parameters stemming from Zn(2+) dissociation and Mg(2+) substitution (confirmed via Raman spectroscopy). The analysis of cathodoluminescence spectra revealed a blueshift of the peak alloy band-edge emission along with a redshift of the ZnO band-edge emission; and both were found to be strong functions of the annealing temperature. The conversion of Zn(2)SiO(4) to Mg(2)SiO(4) (in O(2)) and MgSiO(3) (in Ar) was found to correspond to transformations (shifting and scaling) of high-energy luminescence peaks and was confirmed with X-ray diffraction analysis. The tunability of the cutoff photodetection wavelength was evaluated as the nanowire arrays exhibited selective absorption by retaining elevated conduction under high-energy UV-C irradiation after thermal treatment but exhibiting suppressed conductivity and a single order of magnitude reduction in both spectral responsivity (R(λ)) and photoconductive gain (G) under UV-A illumination. Noise analysis revealed that the variation of detectivity (D*) depended on the regime of ultraviolet irradiation, and that these variations are related to thermal noise resulting from oxygen-related defects on both nanowire and substrate surfaces. These results suggest a minor design tradeoff between the noise characteristics of thermally treated ZnMgO nanowire array UV detectors and the tunability of their spectral sensitivity. American Chemical Society 2018-05-04 /pmc/articles/PMC6641753/ /pubmed/31458706 http://dx.doi.org/10.1021/acsomega.7b01362 Text en Copyright © 2018 American Chemical Society This is an open access article published under an ACS AuthorChoice License (http://pubs.acs.org/page/policy/authorchoice_termsofuse.html) , which permits copying and redistribution of the article or any adaptations for non-commercial purposes. |
spellingShingle | Azhar, Ebraheem Ali Vanjaria, Jignesh Ahn, Seungho Fou, Thomas Dey, Sandwip K. Salagaj, Tom Sbrockey, Nick Tompa, Gary S. Yu, Hongbin Vapor-Transport Synthesis and Annealing Study of Zn(x)Mg(1–x)O Nanowire Arrays for Selective, Solar-Blind UV-C Detection |
title | Vapor-Transport Synthesis and Annealing Study of Zn(x)Mg(1–x)O
Nanowire Arrays for Selective, Solar-Blind UV-C Detection |
title_full | Vapor-Transport Synthesis and Annealing Study of Zn(x)Mg(1–x)O
Nanowire Arrays for Selective, Solar-Blind UV-C Detection |
title_fullStr | Vapor-Transport Synthesis and Annealing Study of Zn(x)Mg(1–x)O
Nanowire Arrays for Selective, Solar-Blind UV-C Detection |
title_full_unstemmed | Vapor-Transport Synthesis and Annealing Study of Zn(x)Mg(1–x)O
Nanowire Arrays for Selective, Solar-Blind UV-C Detection |
title_short | Vapor-Transport Synthesis and Annealing Study of Zn(x)Mg(1–x)O
Nanowire Arrays for Selective, Solar-Blind UV-C Detection |
title_sort | vapor-transport synthesis and annealing study of zn(x)mg(1–x)o
nanowire arrays for selective, solar-blind uv-c detection |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6641753/ https://www.ncbi.nlm.nih.gov/pubmed/31458706 http://dx.doi.org/10.1021/acsomega.7b01362 |
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