Cargando…

Multiple exciton generation induced enhancement of the photoresponse of pulsed-laser-ablation synthesized single-wall-carbon-nanotube/PbS-quantum-dots nanohybrids

The pulsed laser deposition method was used to decorate appropriately single wall carbon nanotubes (SWCNTs) with PbS quantum dots (QDs), leading to the formation of a novel class of SWCNTs/PbS-QDs nanohybrids (NHs), without resorting to any ligand engineering and/or surface functionalization. The nu...

Descripción completa

Detalles Bibliográficos
Autores principales: Ka, Ibrahima, Le Borgne, Vincent, Fujisawa, Kazunori, Hayashi, Takuya, Kim, Yoong Ahm, Endo, Morinobu, Ma, Dongling, El Khakani, My Ali
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Nature Publishing Group 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4735719/
https://www.ncbi.nlm.nih.gov/pubmed/26830452
http://dx.doi.org/10.1038/srep20083
_version_ 1782413130887856128
author Ka, Ibrahima
Le Borgne, Vincent
Fujisawa, Kazunori
Hayashi, Takuya
Kim, Yoong Ahm
Endo, Morinobu
Ma, Dongling
El Khakani, My Ali
author_facet Ka, Ibrahima
Le Borgne, Vincent
Fujisawa, Kazunori
Hayashi, Takuya
Kim, Yoong Ahm
Endo, Morinobu
Ma, Dongling
El Khakani, My Ali
author_sort Ka, Ibrahima
collection PubMed
description The pulsed laser deposition method was used to decorate appropriately single wall carbon nanotubes (SWCNTs) with PbS quantum dots (QDs), leading to the formation of a novel class of SWCNTs/PbS-QDs nanohybrids (NHs), without resorting to any ligand engineering and/or surface functionalization. The number of laser ablation pulses (N(Lp)) was used to control the average size of the PbS-QDs and their coverage on the SWCNTs’ surface. Photoconductive (PC) devices fabricated from these SWCNTs/PbS-QDs NHs have shown a significantly enhanced photoresponse, which is found to be PbS-QD size dependent. Wavelength-resolved photocurrent measurements revealed a strong photoconductivity of the NHs in the UV-visible region, which is shown to be due to multiple exciton generation (MEG) in the PbS-QDs. For the 6.5 nm-diameter PbS-QDs (with a bandgap (Eg) = 0.86 eV), the MEG contribution of the NHs based PC devices was shown to lead to a normalized internal quantum efficiency in excess of 300% for photon energies ≥4.5Eg. While the lowest MEG threshold in our NHs based PC devices is found to be of ~2.5Eg, the MEG efficiency reaches values as high as 0.9 ± 0.1.
format Online
Article
Text
id pubmed-4735719
institution National Center for Biotechnology Information
language English
publishDate 2016
publisher Nature Publishing Group
record_format MEDLINE/PubMed
spelling pubmed-47357192016-02-05 Multiple exciton generation induced enhancement of the photoresponse of pulsed-laser-ablation synthesized single-wall-carbon-nanotube/PbS-quantum-dots nanohybrids Ka, Ibrahima Le Borgne, Vincent Fujisawa, Kazunori Hayashi, Takuya Kim, Yoong Ahm Endo, Morinobu Ma, Dongling El Khakani, My Ali Sci Rep Article The pulsed laser deposition method was used to decorate appropriately single wall carbon nanotubes (SWCNTs) with PbS quantum dots (QDs), leading to the formation of a novel class of SWCNTs/PbS-QDs nanohybrids (NHs), without resorting to any ligand engineering and/or surface functionalization. The number of laser ablation pulses (N(Lp)) was used to control the average size of the PbS-QDs and their coverage on the SWCNTs’ surface. Photoconductive (PC) devices fabricated from these SWCNTs/PbS-QDs NHs have shown a significantly enhanced photoresponse, which is found to be PbS-QD size dependent. Wavelength-resolved photocurrent measurements revealed a strong photoconductivity of the NHs in the UV-visible region, which is shown to be due to multiple exciton generation (MEG) in the PbS-QDs. For the 6.5 nm-diameter PbS-QDs (with a bandgap (Eg) = 0.86 eV), the MEG contribution of the NHs based PC devices was shown to lead to a normalized internal quantum efficiency in excess of 300% for photon energies ≥4.5Eg. While the lowest MEG threshold in our NHs based PC devices is found to be of ~2.5Eg, the MEG efficiency reaches values as high as 0.9 ± 0.1. Nature Publishing Group 2016-02-02 /pmc/articles/PMC4735719/ /pubmed/26830452 http://dx.doi.org/10.1038/srep20083 Text en Copyright © 2016, Macmillan Publishers Limited http://creativecommons.org/licenses/by/4.0/ This work is licensed under a Creative Commons Attribution 4.0 International License. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in the credit line; if the material is not included under the Creative Commons license, users will need to obtain permission from the license holder to reproduce the material. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/
spellingShingle Article
Ka, Ibrahima
Le Borgne, Vincent
Fujisawa, Kazunori
Hayashi, Takuya
Kim, Yoong Ahm
Endo, Morinobu
Ma, Dongling
El Khakani, My Ali
Multiple exciton generation induced enhancement of the photoresponse of pulsed-laser-ablation synthesized single-wall-carbon-nanotube/PbS-quantum-dots nanohybrids
title Multiple exciton generation induced enhancement of the photoresponse of pulsed-laser-ablation synthesized single-wall-carbon-nanotube/PbS-quantum-dots nanohybrids
title_full Multiple exciton generation induced enhancement of the photoresponse of pulsed-laser-ablation synthesized single-wall-carbon-nanotube/PbS-quantum-dots nanohybrids
title_fullStr Multiple exciton generation induced enhancement of the photoresponse of pulsed-laser-ablation synthesized single-wall-carbon-nanotube/PbS-quantum-dots nanohybrids
title_full_unstemmed Multiple exciton generation induced enhancement of the photoresponse of pulsed-laser-ablation synthesized single-wall-carbon-nanotube/PbS-quantum-dots nanohybrids
title_short Multiple exciton generation induced enhancement of the photoresponse of pulsed-laser-ablation synthesized single-wall-carbon-nanotube/PbS-quantum-dots nanohybrids
title_sort multiple exciton generation induced enhancement of the photoresponse of pulsed-laser-ablation synthesized single-wall-carbon-nanotube/pbs-quantum-dots nanohybrids
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4735719/
https://www.ncbi.nlm.nih.gov/pubmed/26830452
http://dx.doi.org/10.1038/srep20083
work_keys_str_mv AT kaibrahima multipleexcitongenerationinducedenhancementofthephotoresponseofpulsedlaserablationsynthesizedsinglewallcarbonnanotubepbsquantumdotsnanohybrids
AT leborgnevincent multipleexcitongenerationinducedenhancementofthephotoresponseofpulsedlaserablationsynthesizedsinglewallcarbonnanotubepbsquantumdotsnanohybrids
AT fujisawakazunori multipleexcitongenerationinducedenhancementofthephotoresponseofpulsedlaserablationsynthesizedsinglewallcarbonnanotubepbsquantumdotsnanohybrids
AT hayashitakuya multipleexcitongenerationinducedenhancementofthephotoresponseofpulsedlaserablationsynthesizedsinglewallcarbonnanotubepbsquantumdotsnanohybrids
AT kimyoongahm multipleexcitongenerationinducedenhancementofthephotoresponseofpulsedlaserablationsynthesizedsinglewallcarbonnanotubepbsquantumdotsnanohybrids
AT endomorinobu multipleexcitongenerationinducedenhancementofthephotoresponseofpulsedlaserablationsynthesizedsinglewallcarbonnanotubepbsquantumdotsnanohybrids
AT madongling multipleexcitongenerationinducedenhancementofthephotoresponseofpulsedlaserablationsynthesizedsinglewallcarbonnanotubepbsquantumdotsnanohybrids
AT elkhakanimyali multipleexcitongenerationinducedenhancementofthephotoresponseofpulsedlaserablationsynthesizedsinglewallcarbonnanotubepbsquantumdotsnanohybrids