6533b7d8fe1ef96bd1269979
RESEARCH PRODUCT
Rapid Production of Internally Structured Colloids by Flash Nanoprecipitation of Block Copolymer Blends.
Lorena S. GrundyArash NikoubashmanWilliam D. MulhearnRichard A. RegisterVictoria E. LeeNannan LiRui LiuRodney D. PriestleyAthanassios Z. PanagiotopoulosChris SosaRobert K. Prud'hommesubject
Materials sciencePrecipitation (chemistry)digestive oral and skin physiologyeducationGeneral EngineeringGeneral Physics and Astronomy02 engineering and technology010402 general chemistry021001 nanoscience & nanotechnology01 natural sciences0104 chemical sciencesNanomaterialsSolventColloidChemical engineeringCopolymerParticleGeneral Materials ScienceLamellar structure0210 nano-technologyBiosensordescription
Colloids with internally structured geometries have shown great promise in applications ranging from biosensors to optics to drug delivery, where the internal particle structure is paramount to performance. The growing demand for such nanomaterials necessitates the development of a scalable processing platform for their production. Flash nanoprecipitation (FNP), a rapid and inherently scalable colloid precipitation technology, is used to prepare internally structured colloids from blends of block copolymers and homopolymers. As revealed by a combination of experiments and simulations, colloids prepared from different molecular weight diblock copolymers adopt either an ordered lamellar morphology consisting of concentric shells or a disordered lamellar morphology when chain dynamics are sufficiently slow to prevent defect annealing during solvent exchange. Blends of homopolymer and block copolymer in the feed stream generate more complex internally structured colloids, such as those with hierarchically structured Janus and patchy morphologies, due to additional phase separation and kinetic trapping effects. The ability of the FNP process to generate such a wide range of morphologies using a simple and scalable setup provides a pathway to manufacturing internally structured colloids on an industrial scale.
year | journal | country | edition | language |
---|---|---|---|---|
2018-05-03 | ACS nano |