A colloidal quantum dot infrared photodetector and its use for intraband detection

The field of wavefunction engineering using intraband transition to design infrared devices has been limited to epitaxially grown semiconductors. Here the authors demonstrate that a device with similar energy landscape can be obtained from a mixture of colloidal quantum dots made of HgTe and HgSe.

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Autores principales: Clément Livache, Bertille Martinez, Nicolas Goubet, Charlie Gréboval, Junling Qu, Audrey Chu, Sébastien Royer, Sandrine Ithurria, Mathieu G. Silly, Benoit Dubertret, Emmanuel Lhuillier
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Lenguaje:EN
Publicado: Nature Portfolio 2019
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Acceso en línea:https://doaj.org/article/ebf0fef7aee744a49ab87ff5f1f4676a
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spelling oai:doaj.org-article:ebf0fef7aee744a49ab87ff5f1f4676a2021-12-02T14:39:17ZA colloidal quantum dot infrared photodetector and its use for intraband detection10.1038/s41467-019-10170-82041-1723https://doaj.org/article/ebf0fef7aee744a49ab87ff5f1f4676a2019-05-01T00:00:00Zhttps://doi.org/10.1038/s41467-019-10170-8https://doaj.org/toc/2041-1723The field of wavefunction engineering using intraband transition to design infrared devices has been limited to epitaxially grown semiconductors. Here the authors demonstrate that a device with similar energy landscape can be obtained from a mixture of colloidal quantum dots made of HgTe and HgSe.Clément LivacheBertille MartinezNicolas GoubetCharlie GrébovalJunling QuAudrey ChuSébastien RoyerSandrine IthurriaMathieu G. SillyBenoit DubertretEmmanuel LhuillierNature PortfolioarticleScienceQENNature Communications, Vol 10, Iss 1, Pp 1-10 (2019)
institution DOAJ
collection DOAJ
language EN
topic Science
Q
spellingShingle Science
Q
Clément Livache
Bertille Martinez
Nicolas Goubet
Charlie Gréboval
Junling Qu
Audrey Chu
Sébastien Royer
Sandrine Ithurria
Mathieu G. Silly
Benoit Dubertret
Emmanuel Lhuillier
A colloidal quantum dot infrared photodetector and its use for intraband detection
description The field of wavefunction engineering using intraband transition to design infrared devices has been limited to epitaxially grown semiconductors. Here the authors demonstrate that a device with similar energy landscape can be obtained from a mixture of colloidal quantum dots made of HgTe and HgSe.
format article
author Clément Livache
Bertille Martinez
Nicolas Goubet
Charlie Gréboval
Junling Qu
Audrey Chu
Sébastien Royer
Sandrine Ithurria
Mathieu G. Silly
Benoit Dubertret
Emmanuel Lhuillier
author_facet Clément Livache
Bertille Martinez
Nicolas Goubet
Charlie Gréboval
Junling Qu
Audrey Chu
Sébastien Royer
Sandrine Ithurria
Mathieu G. Silly
Benoit Dubertret
Emmanuel Lhuillier
author_sort Clément Livache
title A colloidal quantum dot infrared photodetector and its use for intraband detection
title_short A colloidal quantum dot infrared photodetector and its use for intraband detection
title_full A colloidal quantum dot infrared photodetector and its use for intraband detection
title_fullStr A colloidal quantum dot infrared photodetector and its use for intraband detection
title_full_unstemmed A colloidal quantum dot infrared photodetector and its use for intraband detection
title_sort colloidal quantum dot infrared photodetector and its use for intraband detection
publisher Nature Portfolio
publishDate 2019
url https://doaj.org/article/ebf0fef7aee744a49ab87ff5f1f4676a
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