Issue 7, 2024

Fabrication of highly luminescent and thermally stable composites of sulfur nanodots through surface modification and assembly

Abstract

Sulfur nanodots (S-dots) have emerged as a promising luminescent material to excel over traditional heavy metal-based quantum dots. However, their relatively low emission efficiency and poor thermal stability in the solid state have limited their wide applications in photoelectric devices. In this work, highly luminescent, with a photoluminescence quantum yield higher than 50%, and thermally stable composites of S-dots were produced through modulating their surface states and aggregation behaviors by introducing pyromellitic dianhydride (PMDA) and benzoyleneurea (BEU), respectively. PMDA eliminated the relatively short-lived surface states and defects on the surface of S-dots and BEU regulated the aggregation states and facilitated the energy transfer from BEU to S-dots. The as-obtained composites also showed significantly improved thermal stability compared to S-dots, aided by the hydrophobic chemical groups and dense matrix of PMDA and BEU, which extended their applications in fabricating light-emitting diodes. Our presented results provide a new approach to produce highly luminescent S-dots, which widen their applications in the fields of bioimaging, sensing, photoelectric devices, and environmental science.

Graphical abstract: Fabrication of highly luminescent and thermally stable composites of sulfur nanodots through surface modification and assembly

Supplementary files

Article information

Article type
Paper
Submitted
10 Dec 2023
Accepted
29 Dec 2023
First published
03 Jan 2024

Nanoscale, 2024,16, 3492-3497

Fabrication of highly luminescent and thermally stable composites of sulfur nanodots through surface modification and assembly

B. Sun, Y. Shi, J. Guo and Z. Wang, Nanoscale, 2024, 16, 3492 DOI: 10.1039/D3NR06292A

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