Abstract

We describe the synthesis of water-soluble semiconductor nanoparticles and discuss and characterize their properties. Hydrophobic CdSe/ZnS core/shell nanocrystals with a core size between 2 and 5 nm are embedded in a siloxane shell and functionalized with thiol and/or amine groups. Structural characterization by AFM indicates that the siloxane shell is 1−5 nm thick, yielding final particle sizes of 6−17 nm, depending on the initial CdSe core size. The silica coating does not significantly modify the optical properties of the nanocrystals. Their fluorescence emission is about 32−35 nm fwhm and can be tuned from blue to red with quantum yields up to 18%, mainly determined by the quantum yield of the underlying CdSe/ZnS nanocrystals. Silanized nanocrystals exhibit enhanced photochemical stability over organic fluorophores. They also display high stability in buffers at physiological conditions (>150 mM NaCl). The introduction of functionalized groups onto the siloxane surface would permit the conjugation of the nanocrystals to biological entities.

Keywords

SiloxaneNanocrystalQuantum dotMaterials scienceQuantum yieldChemical engineeringNanoparticleNanotechnologyColloidParticle sizeSemiconductorFull width at half maximumPhotoluminescenceCoatingFluorescenceOptoelectronicsComposite materialPolymerOptics

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Publication Info

Year
2001
Type
article
Volume
105
Issue
37
Pages
8861-8871
Citations
1244
Access
Closed

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Cite This

Daniele Gerion, Fabien Pinaud, Shara C. Williams et al. (2001). Synthesis and Properties of Biocompatible Water-Soluble Silica-Coated CdSe/ZnS Semiconductor Quantum Dots. The Journal of Physical Chemistry B , 105 (37) , 8861-8871. https://doi.org/10.1021/jp0105488

Identifiers

DOI
10.1021/jp0105488

Data Quality

Data completeness: 81%