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Polymers of Intrinsic Microporosity with Dinaphthyl and Thianthrene Segments
Author(s) -
Naiying Du,
Gilles P. Robertson,
Ingo Pinnau,
Michael D. Guiver
Publication year - 2010
Publication title -
macromolecules
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.994
H-Index - 313
eISSN - 1520-5835
pISSN - 0024-9297
DOI - 10.1021/ma101930x
Subject(s) - copolymer , polymer , polymer chemistry , monomer , materials science , thermogravimetric analysis , fluoropolymer , microporous material , differential scanning calorimetry , dispersity , chemical engineering , polymerization , chemistry , organic chemistry , thermodynamics , composite material , engineering , physics
Novel intrinsically microporous homopolymers and copolymers derived from PIM-1 monomers (5,50,6,60-tetrahydroxy-3,3,30,30-tetramethylspirobisindane and 2,3,5,6-tetrafluoroterephthalonitrile) with two additional monomers; tetrahydroxydinaphthyl and tetrafluorotetraoxide thianthrene-are reported as potential materials for membrane-based gas separations. The resulting copolymers prevent efficient space packing of the stiff polymer chains and consequently exhibit analogous behavior to that of PIM-1, the most widely reported polymer in this class of materials. In addition, the copolymerization provides high molecular weight copolymers and low polydispersity if the polymerization reactions were conducted at elevated temperature for an extended period of time. Detailed structural characterization of the new monomers and polymers was determined by 1H and 19F nuclear magnetic resonance spectroscopy (NMR). The thermal properties were detected by differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA). Polymer free volume was calculated from the polymer density and specific van der Waals volume. Under the same testing conditions, the homopolymer containing thianthrene units andmost of the analogous copolymers have an excellent combination of properties with good film-forming characteristics. The gas transport properties show higher selectivity for gas pairs such as O2/N2, CO2/N2, and H2/N2 with a corresponding decrease in permeability compared to PIM-1. This work also demonstrates that significant improvements in properties may be obtained through copolymers of intrinsic microporosity (CoPIM)s. Furthermore, this work extends the spectrum of high molecular weight soluble PIMs beyond those reported previously.Peer reviewed: YesNRC publication: Ye

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