Bifunctional Submicron Colloidosomes Coassembled from Fluorescent and Superparamagnetic Nanoparticles
Colloidosomes are microcapsules consisting of nanoparticle shells. These microcarriers can be self‐assembled from a wide range of colloidal particles with selective chemical, physical, and morphological properties and show promise for application in the field of theranostic nanomedicine. Previous st...
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Veröffentlicht in: | Angewandte Chemie 2015-01, Vol.127 (1), p.120-125 |
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Sprache: | eng ; ger |
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Zusammenfassung: | Colloidosomes are microcapsules consisting of nanoparticle shells. These microcarriers can be self‐assembled from a wide range of colloidal particles with selective chemical, physical, and morphological properties and show promise for application in the field of theranostic nanomedicine. Previous studies have mainly focused on fairly large colloidosomes (>1 μm) based on a single kind of particle; however, the intrinsic building‐block nature of this microcarrier has not been exploited so far for the introduction of tailored functionality at the nanoscale. We report a synthetic route based on interfacial shear rheology studies that allows the simultaneous incorporation of different nanoparticles with distinct physical properties, that is, superparamagnetic iron oxide and fluorescent silica nanoparticles, in a single submicron colloidosome. These tailor‐made microcapsules can potentially be used in various biomedical applications, including magnetic hyperthermia, magnetic particle imaging, drug targeting, and bioimaging.
Außen funktionell, innen leer: Difunktionelle Kolloidosome wurden aus superparamagnetischen Eisenoxid‐Nanopartikeln (SPIONs) und Fluoreszenzfarbstoff‐dotierten Silica‐Nanopartikeln (FSNPs) an der Grenzfläche von Wasser‐in‐Öl‐Emulsionströpfchen hergestellt und durch Zentrifugieren in eine frische wässrige Phase überführt. Die inhärent starren Mikrokapseln haben eine nanoporöse Schale und einen wässrigen Kern zum Einschluss aktiver Reagentien. |
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ISSN: | 0044-8249 1521-3757 |
DOI: | 10.1002/ange.201408515 |