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Microwave assisted robust aqueous synthesis of Mn(2+)-doped CdSe QDs with enhanced electronic properties

A robust doping strategy of Mn(2+) ions in CdSe QDs has been developed in aqueous medium with mild microwave irradiation using the short-chain capping ligand 3-MPA. The concentration of the dopant is varied stoichiometrically in order to measure its effect on the conductivity of QD solids for furthe...

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Autores principales: Meladom, Sandhya K., Arackal, Sarath, Sreedharan, Anjusree, Sagar, Srikrishna, Das, Bikas C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9083121/
https://www.ncbi.nlm.nih.gov/pubmed/35541065
http://dx.doi.org/10.1039/c8ra03631d
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author Meladom, Sandhya K.
Arackal, Sarath
Sreedharan, Anjusree
Sagar, Srikrishna
Das, Bikas C.
author_facet Meladom, Sandhya K.
Arackal, Sarath
Sreedharan, Anjusree
Sagar, Srikrishna
Das, Bikas C.
author_sort Meladom, Sandhya K.
collection PubMed
description A robust doping strategy of Mn(2+) ions in CdSe QDs has been developed in aqueous medium with mild microwave irradiation using the short-chain capping ligand 3-MPA. The concentration of the dopant is varied stoichiometrically in order to measure its effect on the conductivity of QD solids for further potential applications in the future. The synthesis parameters of CdSe QDs have been optimized to produce a uniform size among various samples to decouple the doping dependent conductivity from their bandgap. Doping yield is measured extensively by several studies like EDS, ICP-AES, and XPS. The layer-by-layer electrostatic assembly method has been exploited to fabricate thin film devices. I–V characteristics reveal that the electrical conductivity of 2% Mn(2+)-doped CdSe QD devices is enhanced on the order of ∼10(4) compared to its undoped counterpart. The “auto-ionization” of Mn(2+) dopants in CdSe QDs due to the quantum confinement effect is one reason for this jump in conductivity as described in the Poole–Frenkel effect. STM measurements of the monolayer QD device shows its resistive switching properties. Importantly, the threshold voltage of switching decreased with the increase of doping concentration. All these results confirm the efficiency of Mn(2+) doping in zinc-blende CdSe QDs in aqueous medium, by avoiding the “self-purification” effect of CdSe QDs, and their further application as a potential candidate for future memristor devices.
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spelling pubmed-90831212022-05-09 Microwave assisted robust aqueous synthesis of Mn(2+)-doped CdSe QDs with enhanced electronic properties Meladom, Sandhya K. Arackal, Sarath Sreedharan, Anjusree Sagar, Srikrishna Das, Bikas C. RSC Adv Chemistry A robust doping strategy of Mn(2+) ions in CdSe QDs has been developed in aqueous medium with mild microwave irradiation using the short-chain capping ligand 3-MPA. The concentration of the dopant is varied stoichiometrically in order to measure its effect on the conductivity of QD solids for further potential applications in the future. The synthesis parameters of CdSe QDs have been optimized to produce a uniform size among various samples to decouple the doping dependent conductivity from their bandgap. Doping yield is measured extensively by several studies like EDS, ICP-AES, and XPS. The layer-by-layer electrostatic assembly method has been exploited to fabricate thin film devices. I–V characteristics reveal that the electrical conductivity of 2% Mn(2+)-doped CdSe QD devices is enhanced on the order of ∼10(4) compared to its undoped counterpart. The “auto-ionization” of Mn(2+) dopants in CdSe QDs due to the quantum confinement effect is one reason for this jump in conductivity as described in the Poole–Frenkel effect. STM measurements of the monolayer QD device shows its resistive switching properties. Importantly, the threshold voltage of switching decreased with the increase of doping concentration. All these results confirm the efficiency of Mn(2+) doping in zinc-blende CdSe QDs in aqueous medium, by avoiding the “self-purification” effect of CdSe QDs, and their further application as a potential candidate for future memristor devices. The Royal Society of Chemistry 2018-07-26 /pmc/articles/PMC9083121/ /pubmed/35541065 http://dx.doi.org/10.1039/c8ra03631d Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Meladom, Sandhya K.
Arackal, Sarath
Sreedharan, Anjusree
Sagar, Srikrishna
Das, Bikas C.
Microwave assisted robust aqueous synthesis of Mn(2+)-doped CdSe QDs with enhanced electronic properties
title Microwave assisted robust aqueous synthesis of Mn(2+)-doped CdSe QDs with enhanced electronic properties
title_full Microwave assisted robust aqueous synthesis of Mn(2+)-doped CdSe QDs with enhanced electronic properties
title_fullStr Microwave assisted robust aqueous synthesis of Mn(2+)-doped CdSe QDs with enhanced electronic properties
title_full_unstemmed Microwave assisted robust aqueous synthesis of Mn(2+)-doped CdSe QDs with enhanced electronic properties
title_short Microwave assisted robust aqueous synthesis of Mn(2+)-doped CdSe QDs with enhanced electronic properties
title_sort microwave assisted robust aqueous synthesis of mn(2+)-doped cdse qds with enhanced electronic properties
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9083121/
https://www.ncbi.nlm.nih.gov/pubmed/35541065
http://dx.doi.org/10.1039/c8ra03631d
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