Control of the direction of energy transfer in associates of colloidal quantum dots Ag2S/TGA and dye molecules

The possibilities for changing the direction of energy transfer in hybrid associates of colloidal Ag2S quantum dots (QDs) and thionine molecules are analyzed. The studies were performed by transmission electron microscopy, absorption and luminescence spectroscopy, PL decay study (time correlated sin...

Full description

Bibliographic Details
Main Authors: Ovchinnikov Oleg V., Smirnov Mikhail S., Grevtseva Irina G., Kondratenko Tamara S., Perepelitsa Aleksey S.
Format: Article
Language:English
Published: EDP Sciences 2018-01-01
Series:EPJ Web of Conferences
Online Access:https://doi.org/10.1051/epjconf/201819004015
id doaj-4fbdc782883246cfac0980d3735117f9
record_format Article
spelling doaj-4fbdc782883246cfac0980d3735117f92021-08-02T20:06:46ZengEDP SciencesEPJ Web of Conferences2100-014X2018-01-011900401510.1051/epjconf/201819004015epjconf_hbsm2018_04015Control of the direction of energy transfer in associates of colloidal quantum dots Ag2S/TGA and dye moleculesOvchinnikov Oleg V.Smirnov Mikhail S.Grevtseva Irina G.Kondratenko Tamara S.Perepelitsa Aleksey S.The possibilities for changing the direction of energy transfer in hybrid associates of colloidal Ag2S quantum dots (QDs) and thionine molecules are analyzed. The studies were performed by transmission electron microscopy, absorption and luminescence spectroscopy, PL decay study (time correlated single photon counting). An increasing of the average QDs size from 1.8 nm to 5.5 nm, and also a shift of the luminescence band from 630 nm to 950 nm, were found at using of TGA molecules and sodium sulfide as a sulfur precursor. Hybrid association of QDs (1.8 nm) with TH+ molecules leads to quenching of QDs luminescence with a simultaneous reduction of the luminescence lifetime from 13.7 to 6.5 ns. An association of QDs with a luminescence band maximum of 950 nm with TH+ molecules leads to quenching of TH+ luminescence and a reduction in its lifetime of luminescence from 0.43 to 0.3 ns. It was concluded that the reduction of lifetime of luminescence caused by the resonant nonradiative energy transfer between the components of the associates. An increasing in the average size of QDs leads to a change in the direction of energy transfer between the components of the associates.https://doi.org/10.1051/epjconf/201819004015
collection DOAJ
language English
format Article
sources DOAJ
author Ovchinnikov Oleg V.
Smirnov Mikhail S.
Grevtseva Irina G.
Kondratenko Tamara S.
Perepelitsa Aleksey S.
spellingShingle Ovchinnikov Oleg V.
Smirnov Mikhail S.
Grevtseva Irina G.
Kondratenko Tamara S.
Perepelitsa Aleksey S.
Control of the direction of energy transfer in associates of colloidal quantum dots Ag2S/TGA and dye molecules
EPJ Web of Conferences
author_facet Ovchinnikov Oleg V.
Smirnov Mikhail S.
Grevtseva Irina G.
Kondratenko Tamara S.
Perepelitsa Aleksey S.
author_sort Ovchinnikov Oleg V.
title Control of the direction of energy transfer in associates of colloidal quantum dots Ag2S/TGA and dye molecules
title_short Control of the direction of energy transfer in associates of colloidal quantum dots Ag2S/TGA and dye molecules
title_full Control of the direction of energy transfer in associates of colloidal quantum dots Ag2S/TGA and dye molecules
title_fullStr Control of the direction of energy transfer in associates of colloidal quantum dots Ag2S/TGA and dye molecules
title_full_unstemmed Control of the direction of energy transfer in associates of colloidal quantum dots Ag2S/TGA and dye molecules
title_sort control of the direction of energy transfer in associates of colloidal quantum dots ag2s/tga and dye molecules
publisher EDP Sciences
series EPJ Web of Conferences
issn 2100-014X
publishDate 2018-01-01
description The possibilities for changing the direction of energy transfer in hybrid associates of colloidal Ag2S quantum dots (QDs) and thionine molecules are analyzed. The studies were performed by transmission electron microscopy, absorption and luminescence spectroscopy, PL decay study (time correlated single photon counting). An increasing of the average QDs size from 1.8 nm to 5.5 nm, and also a shift of the luminescence band from 630 nm to 950 nm, were found at using of TGA molecules and sodium sulfide as a sulfur precursor. Hybrid association of QDs (1.8 nm) with TH+ molecules leads to quenching of QDs luminescence with a simultaneous reduction of the luminescence lifetime from 13.7 to 6.5 ns. An association of QDs with a luminescence band maximum of 950 nm with TH+ molecules leads to quenching of TH+ luminescence and a reduction in its lifetime of luminescence from 0.43 to 0.3 ns. It was concluded that the reduction of lifetime of luminescence caused by the resonant nonradiative energy transfer between the components of the associates. An increasing in the average size of QDs leads to a change in the direction of energy transfer between the components of the associates.
url https://doi.org/10.1051/epjconf/201819004015
work_keys_str_mv AT ovchinnikovolegv controlofthedirectionofenergytransferinassociatesofcolloidalquantumdotsag2stgaanddyemolecules
AT smirnovmikhails controlofthedirectionofenergytransferinassociatesofcolloidalquantumdotsag2stgaanddyemolecules
AT grevtsevairinag controlofthedirectionofenergytransferinassociatesofcolloidalquantumdotsag2stgaanddyemolecules
AT kondratenkotamaras controlofthedirectionofenergytransferinassociatesofcolloidalquantumdotsag2stgaanddyemolecules
AT perepelitsaalekseys controlofthedirectionofenergytransferinassociatesofcolloidalquantumdotsag2stgaanddyemolecules
_version_ 1721227280444817408