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Enhancing photo-reduction quantum efficiency using quasi-type II core/shell quantum dots

Quantum confined semiconductor nanocrystals have emerged as a new class of materials for light harvesting and charge separation applications due to the ability to control their properties through rational design of their size, shape and composition. We report here a study of enhancing the quantum yi...

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Autores principales: Jia, Yanyan, Chen, Jinquan, Wu, Kaifeng, Kaledin, Alex, Musaev, Djamaladdin G., Xie, Zhaoxiong, Lian, Tianquan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Royal Society of Chemistry 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6013914/
https://www.ncbi.nlm.nih.gov/pubmed/30155056
http://dx.doi.org/10.1039/c6sc00192k
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author Jia, Yanyan
Chen, Jinquan
Wu, Kaifeng
Kaledin, Alex
Musaev, Djamaladdin G.
Xie, Zhaoxiong
Lian, Tianquan
author_facet Jia, Yanyan
Chen, Jinquan
Wu, Kaifeng
Kaledin, Alex
Musaev, Djamaladdin G.
Xie, Zhaoxiong
Lian, Tianquan
author_sort Jia, Yanyan
collection PubMed
description Quantum confined semiconductor nanocrystals have emerged as a new class of materials for light harvesting and charge separation applications due to the ability to control their properties through rational design of their size, shape and composition. We report here a study of enhancing the quantum yield of methyl viologen (MV(2+)) photoreduction using colloidal quasi-type II CdSe/CdS core/shell quantum dots (QDs). The steady-state quantum yield of MV(+)˙ radical generation, in the presence of thiols as sacrificial donors, increased monotonically with the CdS shell thickness within the studied thickness regime (0–4.7 CdS monolayers). Using ultrafast transient absorption and time-resolved photoluminescence decay spectroscopy, we found that both the rates of electron transfer from the QD to MV(2+) and the subsequent charge recombination in QD(+)–MV(+)˙ complexes decreased exponentially with the shell thickness, consistent with calculated 1S electron and hole densities at the QD surfaces, respectively. Interestingly, the hole transfer rate remained relatively independent of shell thickness, likely due to a cancellation of the reduction of hole transfer coupling strength with the increased number of hole acceptor ligands on the QD surface at larger shell thickness. As a result, with increasing CdS shell thickness, the charge recombination loss decreases, enhancing the photoreduction quantum efficiency. This novel approach for improving photoreduction quantum efficiency should be applicable to many type II and quasi-type II core/shell quantum dots.
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spelling pubmed-60139142018-08-28 Enhancing photo-reduction quantum efficiency using quasi-type II core/shell quantum dots Jia, Yanyan Chen, Jinquan Wu, Kaifeng Kaledin, Alex Musaev, Djamaladdin G. Xie, Zhaoxiong Lian, Tianquan Chem Sci Chemistry Quantum confined semiconductor nanocrystals have emerged as a new class of materials for light harvesting and charge separation applications due to the ability to control their properties through rational design of their size, shape and composition. We report here a study of enhancing the quantum yield of methyl viologen (MV(2+)) photoreduction using colloidal quasi-type II CdSe/CdS core/shell quantum dots (QDs). The steady-state quantum yield of MV(+)˙ radical generation, in the presence of thiols as sacrificial donors, increased monotonically with the CdS shell thickness within the studied thickness regime (0–4.7 CdS monolayers). Using ultrafast transient absorption and time-resolved photoluminescence decay spectroscopy, we found that both the rates of electron transfer from the QD to MV(2+) and the subsequent charge recombination in QD(+)–MV(+)˙ complexes decreased exponentially with the shell thickness, consistent with calculated 1S electron and hole densities at the QD surfaces, respectively. Interestingly, the hole transfer rate remained relatively independent of shell thickness, likely due to a cancellation of the reduction of hole transfer coupling strength with the increased number of hole acceptor ligands on the QD surface at larger shell thickness. As a result, with increasing CdS shell thickness, the charge recombination loss decreases, enhancing the photoreduction quantum efficiency. This novel approach for improving photoreduction quantum efficiency should be applicable to many type II and quasi-type II core/shell quantum dots. Royal Society of Chemistry 2016-07-01 2016-03-02 /pmc/articles/PMC6013914/ /pubmed/30155056 http://dx.doi.org/10.1039/c6sc00192k Text en This journal is © The Royal Society of Chemistry 2016 http://creativecommons.org/licenses/by/3.0/ This article is freely available. This article is licensed under a Creative Commons Attribution 3.0 Unported Licence (CC BY 3.0)
spellingShingle Chemistry
Jia, Yanyan
Chen, Jinquan
Wu, Kaifeng
Kaledin, Alex
Musaev, Djamaladdin G.
Xie, Zhaoxiong
Lian, Tianquan
Enhancing photo-reduction quantum efficiency using quasi-type II core/shell quantum dots
title Enhancing photo-reduction quantum efficiency using quasi-type II core/shell quantum dots
title_full Enhancing photo-reduction quantum efficiency using quasi-type II core/shell quantum dots
title_fullStr Enhancing photo-reduction quantum efficiency using quasi-type II core/shell quantum dots
title_full_unstemmed Enhancing photo-reduction quantum efficiency using quasi-type II core/shell quantum dots
title_short Enhancing photo-reduction quantum efficiency using quasi-type II core/shell quantum dots
title_sort enhancing photo-reduction quantum efficiency using quasi-type ii core/shell quantum dots
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6013914/
https://www.ncbi.nlm.nih.gov/pubmed/30155056
http://dx.doi.org/10.1039/c6sc00192k
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