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Balancing the Number of Quantum Wells in HgCdTe/CdHgTe Heterostructures for Mid-Infrared Lasing

HgCdTe-based heterostructures with quantum wells (QWs) are a promising material for semiconductor lasers in the atmospheric transparency window (3–5 μm) thanks to the possibility of suppressing Auger recombination due to the no-parabolic law of carrier dispersion. In this work, we analyze the thresh...

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Autores principales: Fadeev, Mikhail A., Dubinov, Alexander A., Razova, Anna A., Yantser, Arina A., Utochkin, Vladimir V., Rumyantsev, Vladimir V., Aleshkin, Vladimir Ya., Gavrilenko, Vladimir I., Mikhailov, Nikolai N., Dvoretsky, Sergey A., Morozov, Sergey V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9785783/
https://www.ncbi.nlm.nih.gov/pubmed/36558251
http://dx.doi.org/10.3390/nano12244398
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author Fadeev, Mikhail A.
Dubinov, Alexander A.
Razova, Anna A.
Yantser, Arina A.
Utochkin, Vladimir V.
Rumyantsev, Vladimir V.
Aleshkin, Vladimir Ya.
Gavrilenko, Vladimir I.
Mikhailov, Nikolai N.
Dvoretsky, Sergey A.
Morozov, Sergey V.
author_facet Fadeev, Mikhail A.
Dubinov, Alexander A.
Razova, Anna A.
Yantser, Arina A.
Utochkin, Vladimir V.
Rumyantsev, Vladimir V.
Aleshkin, Vladimir Ya.
Gavrilenko, Vladimir I.
Mikhailov, Nikolai N.
Dvoretsky, Sergey A.
Morozov, Sergey V.
author_sort Fadeev, Mikhail A.
collection PubMed
description HgCdTe-based heterostructures with quantum wells (QWs) are a promising material for semiconductor lasers in the atmospheric transparency window (3–5 μm) thanks to the possibility of suppressing Auger recombination due to the no-parabolic law of carrier dispersion. In this work, we analyze the thresholds of stimulated emission (SE) under optical pumping from heterostructures with a different number of QWs in the active region of the structure. Total losses in structures are determined from the comparison of thresholds for the different number of QWs in the active region. It is shown that, thanks to the increased modal gain, a higher number of QWs results in lower threshold pumping intensity and, consequently, higher temperature of SE. These results indicate that improvements to the modal gain can result in a moderate uplift in the temperature of SE from mid-infrared HgCdTe-based heterostructures. On the other hand, at a high enough QW count threshold, the intensity no longer depends on the number of the QWs and is determined by the transparency concentration of a single QW.
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spelling pubmed-97857832022-12-24 Balancing the Number of Quantum Wells in HgCdTe/CdHgTe Heterostructures for Mid-Infrared Lasing Fadeev, Mikhail A. Dubinov, Alexander A. Razova, Anna A. Yantser, Arina A. Utochkin, Vladimir V. Rumyantsev, Vladimir V. Aleshkin, Vladimir Ya. Gavrilenko, Vladimir I. Mikhailov, Nikolai N. Dvoretsky, Sergey A. Morozov, Sergey V. Nanomaterials (Basel) Article HgCdTe-based heterostructures with quantum wells (QWs) are a promising material for semiconductor lasers in the atmospheric transparency window (3–5 μm) thanks to the possibility of suppressing Auger recombination due to the no-parabolic law of carrier dispersion. In this work, we analyze the thresholds of stimulated emission (SE) under optical pumping from heterostructures with a different number of QWs in the active region of the structure. Total losses in structures are determined from the comparison of thresholds for the different number of QWs in the active region. It is shown that, thanks to the increased modal gain, a higher number of QWs results in lower threshold pumping intensity and, consequently, higher temperature of SE. These results indicate that improvements to the modal gain can result in a moderate uplift in the temperature of SE from mid-infrared HgCdTe-based heterostructures. On the other hand, at a high enough QW count threshold, the intensity no longer depends on the number of the QWs and is determined by the transparency concentration of a single QW. MDPI 2022-12-09 /pmc/articles/PMC9785783/ /pubmed/36558251 http://dx.doi.org/10.3390/nano12244398 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
Fadeev, Mikhail A.
Dubinov, Alexander A.
Razova, Anna A.
Yantser, Arina A.
Utochkin, Vladimir V.
Rumyantsev, Vladimir V.
Aleshkin, Vladimir Ya.
Gavrilenko, Vladimir I.
Mikhailov, Nikolai N.
Dvoretsky, Sergey A.
Morozov, Sergey V.
Balancing the Number of Quantum Wells in HgCdTe/CdHgTe Heterostructures for Mid-Infrared Lasing
title Balancing the Number of Quantum Wells in HgCdTe/CdHgTe Heterostructures for Mid-Infrared Lasing
title_full Balancing the Number of Quantum Wells in HgCdTe/CdHgTe Heterostructures for Mid-Infrared Lasing
title_fullStr Balancing the Number of Quantum Wells in HgCdTe/CdHgTe Heterostructures for Mid-Infrared Lasing
title_full_unstemmed Balancing the Number of Quantum Wells in HgCdTe/CdHgTe Heterostructures for Mid-Infrared Lasing
title_short Balancing the Number of Quantum Wells in HgCdTe/CdHgTe Heterostructures for Mid-Infrared Lasing
title_sort balancing the number of quantum wells in hgcdte/cdhgte heterostructures for mid-infrared lasing
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9785783/
https://www.ncbi.nlm.nih.gov/pubmed/36558251
http://dx.doi.org/10.3390/nano12244398
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