Issue 12, 2024

Carbon dots on LAPONITE® hybrid nanocomposites: solid-state emission and inter-aggregate energy transfer

Abstract

This study delves into the photoluminescent characteristics of solid-state hybrid carbon dots/LAPONITE® (CDLP). These hybrid materials were synthesized using the hydrothermal method with a precise pH control set at 8.5. The LAPONITE® structure remains intact without structural collapse, and we detected the possible deposition of carbon dots (CDs) aggregates on the clay mineral's edges. The use of different concentrations of citric acid (10-, 6-, 2- and 1-times weight/weight of LAPONITE® mass, maintaining the 1 : 1 molar ratio with ethylenediamine) during synthesis results in different CDs concentrations in CDLP-A (low precursors concentration) and CDLP-D (high concentration) with an amorphous structure and average size around 2.8–3.0 nm. The CDLP displayed visible photoluminescence emission in aqueous and powder, which the last underwent quenching according to lifetimes and quantum yield measurements. Low-temperature measurements revealed an enhancement of the non-radiative pathways induced by aggregation. Energy transfer modelling based on Förster–Dexter suggests an approximate mean distance of 9.5 nm between clusters of CDs.

Graphical abstract: Carbon dots on LAPONITE® hybrid nanocomposites: solid-state emission and inter-aggregate energy transfer

Associated articles

Supplementary files

Article information

Article type
Paper
Submitted
12 Dec 2023
Accepted
03 Mar 2024
First published
07 Mar 2024

Nanoscale, 2024,16, 6286-6295

Carbon dots on LAPONITE® hybrid nanocomposites: solid-state emission and inter-aggregate energy transfer

B. S. D. Onishi, A. N. Carneiro Neto, R. Bortolleto-Santos, V. R. Masterlaro, L. D. Carlos, R. A. S. Ferreira and S. J. L. Ribeiro, Nanoscale, 2024, 16, 6286 DOI: 10.1039/D3NR06336D

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