Bilayer‐Coating Strategy for Hydrophobic Nanoparticles Providing Colloidal Stability, Functionality, and Surface Protection in Biological Media

Author:

Schroter Alexandra1ORCID,Arnau del Valle Carla2,Marín María J.2ORCID,Hirsch Thomas1ORCID

Affiliation:

1. Institute of Analytical Chemistry Chemo- and Biosensors University of Regensburg Universitätsstraße 31 93053 Regensburg Germany

2. School of Chemistry University of East Anglia Norwich Research Park Norwich NR4 7TJ UK

Abstract

AbstractThe surface chemistry of nanoparticles is a key step on the pathway from particle design towards applications in biologically relevant environments. Here, a bilayer‐based strategy for the surface modification of hydrophobic nanoparticles is introduced that leads to excellent colloidal stability in aqueous environments and good protection against disintegration, while permitting surface functionalization via simple carbodiimide chemistry. We have demonstrated the excellent potential of this strategy using upconversion nanoparticles (UCNPs), initially coated with oleate and therefore dispersible only in organic solvents. The hydrophobic oleate capping is maintained and a bilayer is formed upon addition of excess oleate. The bilayer approach renders protection towards luminescence loss by water quenching, while the incorporation of additional molecules containing amino functions yields colloidal stability and facilitates the introduction of functionality. The biological relevance of the approach was confirmed with the use of two model dyes, a photosensitizer and a nitric oxide (NO) probe that, when attached to the surface of the UCNPs, retained their functionality to produce singlet oxygen and detect intracellular NO, respectively. We present a simple and fast strategy to protect and functionalize inorganic nanoparticles in biological media, which is important for controlled surface engineering of nanosized materials for theranostic applications.

Funder

Royal Society of Chemistry

Publisher

Wiley

Subject

General Chemistry,Catalysis

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