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Colloidal 2D PbSe nanoplatelets with efficient emission reaching the telecom O-, E- and S-band

Colloidal two-dimensional (2D) lead chalcogenide nanoplatelets (NPLs) represent highly interesting materials for near- and short wave-infrared applications including innovative glass fiber optics exhibiting negligible attenuation. In this work, we demonstrate a direct synthesis route for 2D PbSe NPL...

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Autores principales: Klepzig, Lars F., Biesterfeld, Leon, Romain, Michel, Niebur, André, Schlosser, Anja, Hübner, Jens, Lauth, Jannika
Formato: Online Artículo Texto
Lenguaje:English
Publicado: RSC 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418099/
https://www.ncbi.nlm.nih.gov/pubmed/36132696
http://dx.doi.org/10.1039/d1na00704a
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author Klepzig, Lars F.
Biesterfeld, Leon
Romain, Michel
Niebur, André
Schlosser, Anja
Hübner, Jens
Lauth, Jannika
author_facet Klepzig, Lars F.
Biesterfeld, Leon
Romain, Michel
Niebur, André
Schlosser, Anja
Hübner, Jens
Lauth, Jannika
author_sort Klepzig, Lars F.
collection PubMed
description Colloidal two-dimensional (2D) lead chalcogenide nanoplatelets (NPLs) represent highly interesting materials for near- and short wave-infrared applications including innovative glass fiber optics exhibiting negligible attenuation. In this work, we demonstrate a direct synthesis route for 2D PbSe NPLs with cubic rock salt crystal structure at low reaction temperatures of 0 °C and room temperature. A lateral size tuning of the PbSe NPLs by controlling the temperature and by adding small amounts of octylamine to the reaction leads to excitonic absorption features in the range of 1.55–1.24 eV (800–1000 nm) and narrow photoluminescence (PL) reaching the telecom O-, E- and S-band (1.38–0.86 eV, 900–1450 nm). The PL quantum yield of the as-synthesized PbSe NPLs is more than doubled by a postsynthetic treatment with CdCl(2) (e.g. from 14.7% to 37.4% for NPLs emitting at 980 nm with a FWHM of 214 meV). An analysis of the slightly asymmetric PL line shape of the PbSe NPLs and their characterization by ultrafast transient absorption and time-resolved PL spectroscopy reveal a surface trap related PL contribution which is successfully reduced by the CdCl(2) treatment from 40% down to 15%. Our results open up new pathways for a direct synthesis and straightforward incorporation of colloidal PbSe NPLs as efficient infrared emitters at technologically relevant telecom wavelengths.
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spelling pubmed-94180992022-09-20 Colloidal 2D PbSe nanoplatelets with efficient emission reaching the telecom O-, E- and S-band Klepzig, Lars F. Biesterfeld, Leon Romain, Michel Niebur, André Schlosser, Anja Hübner, Jens Lauth, Jannika Nanoscale Adv Chemistry Colloidal two-dimensional (2D) lead chalcogenide nanoplatelets (NPLs) represent highly interesting materials for near- and short wave-infrared applications including innovative glass fiber optics exhibiting negligible attenuation. In this work, we demonstrate a direct synthesis route for 2D PbSe NPLs with cubic rock salt crystal structure at low reaction temperatures of 0 °C and room temperature. A lateral size tuning of the PbSe NPLs by controlling the temperature and by adding small amounts of octylamine to the reaction leads to excitonic absorption features in the range of 1.55–1.24 eV (800–1000 nm) and narrow photoluminescence (PL) reaching the telecom O-, E- and S-band (1.38–0.86 eV, 900–1450 nm). The PL quantum yield of the as-synthesized PbSe NPLs is more than doubled by a postsynthetic treatment with CdCl(2) (e.g. from 14.7% to 37.4% for NPLs emitting at 980 nm with a FWHM of 214 meV). An analysis of the slightly asymmetric PL line shape of the PbSe NPLs and their characterization by ultrafast transient absorption and time-resolved PL spectroscopy reveal a surface trap related PL contribution which is successfully reduced by the CdCl(2) treatment from 40% down to 15%. Our results open up new pathways for a direct synthesis and straightforward incorporation of colloidal PbSe NPLs as efficient infrared emitters at technologically relevant telecom wavelengths. RSC 2021-12-15 /pmc/articles/PMC9418099/ /pubmed/36132696 http://dx.doi.org/10.1039/d1na00704a Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Klepzig, Lars F.
Biesterfeld, Leon
Romain, Michel
Niebur, André
Schlosser, Anja
Hübner, Jens
Lauth, Jannika
Colloidal 2D PbSe nanoplatelets with efficient emission reaching the telecom O-, E- and S-band
title Colloidal 2D PbSe nanoplatelets with efficient emission reaching the telecom O-, E- and S-band
title_full Colloidal 2D PbSe nanoplatelets with efficient emission reaching the telecom O-, E- and S-band
title_fullStr Colloidal 2D PbSe nanoplatelets with efficient emission reaching the telecom O-, E- and S-band
title_full_unstemmed Colloidal 2D PbSe nanoplatelets with efficient emission reaching the telecom O-, E- and S-band
title_short Colloidal 2D PbSe nanoplatelets with efficient emission reaching the telecom O-, E- and S-band
title_sort colloidal 2d pbse nanoplatelets with efficient emission reaching the telecom o-, e- and s-band
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9418099/
https://www.ncbi.nlm.nih.gov/pubmed/36132696
http://dx.doi.org/10.1039/d1na00704a
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