Ultraprecise control over the photophysical properties of novel amino acid functionalized CdTeS quantum dots and their effect on the emission of yellow-emissive carbon dots

Kestir, Sacide Melek and Şahin Keskin, Sultan and Ergüder, Özge and Ük, Nida and Türker, Yurdanur and Nar, Ilgın and Trabzon, Levent and Ünlü, Caner (2023) Ultraprecise control over the photophysical properties of novel amino acid functionalized CdTeS quantum dots and their effect on the emission of yellow-emissive carbon dots. Dalton Transactions, 52 (17). pp. 5704-5714. ISSN 1477-9226 (Print) 1477-9234 (Online)

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Abstract

Cadmium-based quantum dots (QDs) are amongst the most studied nanomaterials due to their excellent photophysical properties, which can be controlled by controlling the size and/or composition of the nanocrystal. However, the ultraprecise control over size and photophysical properties of Cd-based quantum dots and developing user-friendly techniques to synthesize amino acid-functionalized cadmium-based QDs are still the on-going challenges. In this study, we modified a traditional two-phase synthesis method to synthesize cadmium telluride sulfide (CdTeS) QDs. CdTeS QDs were grown with an extremely slow growth-rate (growth saturation of about 3 days), which allowed us to have an ultraprecise control over size, and as a consequence, the photophysical properties. Also, the composition of CdTeS could be controlled by controlling the precursor ratios. The CdTeS QDs were successfully functionalized with a water-soluble amino acid, l-cysteine, and an amino acid derivative, N-acetyl-l-cysteine. Red-emissive l-cysteine-functionalized CdTeS QDs interacted with yellow-emissive carbon dots. The fluorescence intensity of carbon dots increased upon interaction with CdTeS QDs. This study proposes a mild method that allows to grow QDs with an ultraprecise control over the photophysical properties and shows the implementation of Cd-based QDs to enhance the fluorescence intensity of different fluorophores with fluorescence wavelength at higher energy bands.
Item Type: Article
Divisions: Sabancı University Nanotechnology Research and Application Center
Depositing User: Yurdanur Türker
Date Deposited: 05 Aug 2023 15:02
Last Modified: 05 Aug 2023 15:02
URI: https://research.sabanciuniv.edu/id/eprint/47140

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