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Ge/Al and Ge/Si(3)N(4)/Al Core/Shell Quantum Dot Lattices in Alumina: Boosting the Spectral Response by Tensile Strain

We investigated the production conditions and optoelectrical properties of thin film material consisting of regularly ordered core/shell Ge/Al and Ge/Si(3)N(4)/Al quantum dots (QDs) in an alumina matrix. The materials were produced by self–assembled growth achieved by means of multilayer magnetron s...

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Autores principales: Periša, Ivana, Tkalčević, Marija, Isaković, Senad, Basioli, Lovro, Ivanda, Mile, Bernstorff, Sigrid, Mičetić, Maja
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9505235/
https://www.ncbi.nlm.nih.gov/pubmed/36143521
http://dx.doi.org/10.3390/ma15186211
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author Periša, Ivana
Tkalčević, Marija
Isaković, Senad
Basioli, Lovro
Ivanda, Mile
Bernstorff, Sigrid
Mičetić, Maja
author_facet Periša, Ivana
Tkalčević, Marija
Isaković, Senad
Basioli, Lovro
Ivanda, Mile
Bernstorff, Sigrid
Mičetić, Maja
author_sort Periša, Ivana
collection PubMed
description We investigated the production conditions and optoelectrical properties of thin film material consisting of regularly ordered core/shell Ge/Al and Ge/Si(3)N(4)/Al quantum dots (QDs) in an alumina matrix. The materials were produced by self–assembled growth achieved by means of multilayer magnetron sputtering deposition. We demonstrated the successful fabrication of well-ordered 3D lattices of Ge/Al and Ge/Si(3)N(4)/Al core/shell quantum dots with a body-centred tetragonal arrangement within the Al(2)O(3) matrix. The addition of shells to the Ge core enables a strong tuning of the optical and electrical properties of the material. An Al shell induces a bandgap shift toward smaller energies, and, in addition, it prevents Ge oxidation. The addition of a thin Si(3)N(4) shell induces huge changes in the material spectral response, i.e., in the number of extracted excitons produced by a single photon. It increases both the absolute value and the width of the spectral response. For the best sample, we achieved an enhancement of over 250% of the produced number of excitons in the measured energy range. The observed changes are, as it seems, the consequence of the large tensile strain in Ge QDs which is induced by the Si(3)N(4) shell addition and which is measured to be about 3% for the most strained QDs. The tensile strain causes activation of the direct bandgap of germanium, which has a very strong effect on the spectral response of the material.
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spelling pubmed-95052352022-09-24 Ge/Al and Ge/Si(3)N(4)/Al Core/Shell Quantum Dot Lattices in Alumina: Boosting the Spectral Response by Tensile Strain Periša, Ivana Tkalčević, Marija Isaković, Senad Basioli, Lovro Ivanda, Mile Bernstorff, Sigrid Mičetić, Maja Materials (Basel) Article We investigated the production conditions and optoelectrical properties of thin film material consisting of regularly ordered core/shell Ge/Al and Ge/Si(3)N(4)/Al quantum dots (QDs) in an alumina matrix. The materials were produced by self–assembled growth achieved by means of multilayer magnetron sputtering deposition. We demonstrated the successful fabrication of well-ordered 3D lattices of Ge/Al and Ge/Si(3)N(4)/Al core/shell quantum dots with a body-centred tetragonal arrangement within the Al(2)O(3) matrix. The addition of shells to the Ge core enables a strong tuning of the optical and electrical properties of the material. An Al shell induces a bandgap shift toward smaller energies, and, in addition, it prevents Ge oxidation. The addition of a thin Si(3)N(4) shell induces huge changes in the material spectral response, i.e., in the number of extracted excitons produced by a single photon. It increases both the absolute value and the width of the spectral response. For the best sample, we achieved an enhancement of over 250% of the produced number of excitons in the measured energy range. The observed changes are, as it seems, the consequence of the large tensile strain in Ge QDs which is induced by the Si(3)N(4) shell addition and which is measured to be about 3% for the most strained QDs. The tensile strain causes activation of the direct bandgap of germanium, which has a very strong effect on the spectral response of the material. MDPI 2022-09-07 /pmc/articles/PMC9505235/ /pubmed/36143521 http://dx.doi.org/10.3390/ma15186211 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
Periša, Ivana
Tkalčević, Marija
Isaković, Senad
Basioli, Lovro
Ivanda, Mile
Bernstorff, Sigrid
Mičetić, Maja
Ge/Al and Ge/Si(3)N(4)/Al Core/Shell Quantum Dot Lattices in Alumina: Boosting the Spectral Response by Tensile Strain
title Ge/Al and Ge/Si(3)N(4)/Al Core/Shell Quantum Dot Lattices in Alumina: Boosting the Spectral Response by Tensile Strain
title_full Ge/Al and Ge/Si(3)N(4)/Al Core/Shell Quantum Dot Lattices in Alumina: Boosting the Spectral Response by Tensile Strain
title_fullStr Ge/Al and Ge/Si(3)N(4)/Al Core/Shell Quantum Dot Lattices in Alumina: Boosting the Spectral Response by Tensile Strain
title_full_unstemmed Ge/Al and Ge/Si(3)N(4)/Al Core/Shell Quantum Dot Lattices in Alumina: Boosting the Spectral Response by Tensile Strain
title_short Ge/Al and Ge/Si(3)N(4)/Al Core/Shell Quantum Dot Lattices in Alumina: Boosting the Spectral Response by Tensile Strain
title_sort ge/al and ge/si(3)n(4)/al core/shell quantum dot lattices in alumina: boosting the spectral response by tensile strain
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9505235/
https://www.ncbi.nlm.nih.gov/pubmed/36143521
http://dx.doi.org/10.3390/ma15186211
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