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Polar and Non-Polar Zn(1−x)Mg(x)O:Sb Grown by MBE

The article presents a systematic study of Sb-doped Zn(1−x)Mg(x)O layers, with various concentrations of Mg, that were successfully grown by plasma-assisted MBE on polar a- and c-oriented and non-polar r-oriented sapphire substrates. X-ray diffraction confirmed the polar c-orientation of alloys grow...

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Autores principales: Przezdziecka, Ewa, Paradowska, Karolina M, Jakiela, Rafal, Kryvyi, Serhii, Zielony, Eunika, Placzek-Popko, Ewa, Lisowski, Wojciech, Sybilski, Piotr, Jarosz, Dawid, Adhikari, Abinash, Stachowicz, Marcin, Kozanecki, Adrian
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9741464/
https://www.ncbi.nlm.nih.gov/pubmed/36499905
http://dx.doi.org/10.3390/ma15238409
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author Przezdziecka, Ewa
Paradowska, Karolina M
Jakiela, Rafal
Kryvyi, Serhii
Zielony, Eunika
Placzek-Popko, Ewa
Lisowski, Wojciech
Sybilski, Piotr
Jarosz, Dawid
Adhikari, Abinash
Stachowicz, Marcin
Kozanecki, Adrian
author_facet Przezdziecka, Ewa
Paradowska, Karolina M
Jakiela, Rafal
Kryvyi, Serhii
Zielony, Eunika
Placzek-Popko, Ewa
Lisowski, Wojciech
Sybilski, Piotr
Jarosz, Dawid
Adhikari, Abinash
Stachowicz, Marcin
Kozanecki, Adrian
author_sort Przezdziecka, Ewa
collection PubMed
description The article presents a systematic study of Sb-doped Zn(1−x)Mg(x)O layers, with various concentrations of Mg, that were successfully grown by plasma-assisted MBE on polar a- and c-oriented and non-polar r-oriented sapphire substrates. X-ray diffraction confirmed the polar c-orientation of alloys grown on c-and a-oriented sapphire and non-polar structures grown on r-oriented substrates. A uniform depth distribution of the Sb dopant at level of 2 × 10(20) cm(−3) was determined by SIMS measurements. Raman spectroscopy revealed the presence of Sb-related modes in all samples. It also showed that Mg alloying reduces the compressive strain associated with Sb doping in ZnO. XPS analysis indicates that the chemical state of Sb atoms in ZnMgO is 3+, suggesting a substitutional position of Sb(Zn), probably associated with two V(Zn) vacancies. Luminescence and transmission spectra were measured to determine the band gaps of the Zn(1−x)Mg(x)O layers. The band gap energies extracted from the transmittance measurements differ slightly for the a, c, and r substrate orientations, and the differences increase with increasing Mg content, despite identical growth conditions. The differences between the energy gaps, determined from transmission and PL peaks, are closely correlated with the Stokes shift and increase with the Mg content in the analyzed series of ZnMgO layers.
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spelling pubmed-97414642022-12-11 Polar and Non-Polar Zn(1−x)Mg(x)O:Sb Grown by MBE Przezdziecka, Ewa Paradowska, Karolina M Jakiela, Rafal Kryvyi, Serhii Zielony, Eunika Placzek-Popko, Ewa Lisowski, Wojciech Sybilski, Piotr Jarosz, Dawid Adhikari, Abinash Stachowicz, Marcin Kozanecki, Adrian Materials (Basel) Article The article presents a systematic study of Sb-doped Zn(1−x)Mg(x)O layers, with various concentrations of Mg, that were successfully grown by plasma-assisted MBE on polar a- and c-oriented and non-polar r-oriented sapphire substrates. X-ray diffraction confirmed the polar c-orientation of alloys grown on c-and a-oriented sapphire and non-polar structures grown on r-oriented substrates. A uniform depth distribution of the Sb dopant at level of 2 × 10(20) cm(−3) was determined by SIMS measurements. Raman spectroscopy revealed the presence of Sb-related modes in all samples. It also showed that Mg alloying reduces the compressive strain associated with Sb doping in ZnO. XPS analysis indicates that the chemical state of Sb atoms in ZnMgO is 3+, suggesting a substitutional position of Sb(Zn), probably associated with two V(Zn) vacancies. Luminescence and transmission spectra were measured to determine the band gaps of the Zn(1−x)Mg(x)O layers. The band gap energies extracted from the transmittance measurements differ slightly for the a, c, and r substrate orientations, and the differences increase with increasing Mg content, despite identical growth conditions. The differences between the energy gaps, determined from transmission and PL peaks, are closely correlated with the Stokes shift and increase with the Mg content in the analyzed series of ZnMgO layers. MDPI 2022-11-25 /pmc/articles/PMC9741464/ /pubmed/36499905 http://dx.doi.org/10.3390/ma15238409 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Przezdziecka, Ewa
Paradowska, Karolina M
Jakiela, Rafal
Kryvyi, Serhii
Zielony, Eunika
Placzek-Popko, Ewa
Lisowski, Wojciech
Sybilski, Piotr
Jarosz, Dawid
Adhikari, Abinash
Stachowicz, Marcin
Kozanecki, Adrian
Polar and Non-Polar Zn(1−x)Mg(x)O:Sb Grown by MBE
title Polar and Non-Polar Zn(1−x)Mg(x)O:Sb Grown by MBE
title_full Polar and Non-Polar Zn(1−x)Mg(x)O:Sb Grown by MBE
title_fullStr Polar and Non-Polar Zn(1−x)Mg(x)O:Sb Grown by MBE
title_full_unstemmed Polar and Non-Polar Zn(1−x)Mg(x)O:Sb Grown by MBE
title_short Polar and Non-Polar Zn(1−x)Mg(x)O:Sb Grown by MBE
title_sort polar and non-polar zn(1−x)mg(x)o:sb grown by mbe
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9741464/
https://www.ncbi.nlm.nih.gov/pubmed/36499905
http://dx.doi.org/10.3390/ma15238409
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