Aqueous synthesis of red fluorescent l-cysteine functionalized CuS quantum dots with potential application as an As(iii) aptasensor.

RSC Adv

Laboratorio de Materiales I, Universidad Autónoma de Nuevo León San Nicolás de los Garza Mexico

Published: June 2023

Water-stable CuS quantum dots were obtained by applying l-cysteine as a Cu(ii) to Cu(i) reducer and stabilizer in water and using an inert atmosphere at ambient temperature. The obtained quantum dots were characterized by STEM, XRD, FT-IR, UV-Vis, Raman, and fluorescence spectroscopy. The synthesis was optimized to achieve CuS quantum dots with an average diameter of about 9 nm that show red fluorescence emission. l-cysteine stabilization mediates crystallite growth, avoids aggregation of the quantum dots, and allows water solubility through polar functional groups, improving the fluorescence. The fluorometric test in the presence of the aptamer showed a shift in fluorescence intensity when an aliquot of As(iii) with a concentration of 100 pmol l is incorporated because As(iii) and the used aptamer make a complex, leaving free the quantum dots and recovering their fluorescence response. The developed CuS quantum dots open possibilities for fluorescent detection of different analytes by simply changing aptamers according to the analyte to be detected.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10286222PMC
http://dx.doi.org/10.1039/d3ra02886kDOI Listing

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