Hierarchically Porous Polymer Monoliths by Combining Controlled Macro- and Microphase Separation

The ability to tune polymer monolith porosity on multiple length scales is desirable for applications in liquid separations, catalysis, and bioengineering. To this end, we have developed a facile synthetic route to nanoporous polymer monoliths based on controlled polymerization of styrene and diviny...

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Veröffentlicht in:Journal of the American Chemical Society 2015-07, Vol.137 (28), p.8896-8899
Hauptverfasser: Saba, Stacey A, Mousavi, Maral P. S, Bühlmann, Philippe, Hillmyer, Marc A
Format: Artikel
Sprache:eng
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Zusammenfassung:The ability to tune polymer monolith porosity on multiple length scales is desirable for applications in liquid separations, catalysis, and bioengineering. To this end, we have developed a facile synthetic route to nanoporous polymer monoliths based on controlled polymerization of styrene and divinylbenzene from a poly­(lactide) macro-chain transfer agent in the presence of nonreactive poly­(ethylene oxide) (PEO). Simple variations in the volume fraction and/or molar mass of PEO lead to either polymerization-induced microphase separation or simultaneous macro- and microphase separation. These processes dictate the resultant morphology and allow for control of the macro- and microstructure of the monoliths. Subsequent selective etching produces monoliths with morphologies that can be tailored from mesoporous, with control over mesopore size, to hierarchically meso- and macroporous, with percolating macropores. This convenient synthetic route to porous polymer monoliths has the potential to be useful in applications where both rapid mass transport and a high surface area are required.
ISSN:0002-7863
1520-5126
DOI:10.1021/jacs.5b04992