Transport of hydrogen and carbon monoxide in highly crosslinked poly(propylene glycol) networks
- 1 February 1984
- journal article
- research article
- Published by Wiley in Journal of Polymer Science: Polymer Physics Edition
- Vol. 22 (2) , 237-243
- https://doi.org/10.1002/pol.1984.180220208
Abstract
Previous interpretations of gas transport data in crosslinked networks have been hindered by an inability to accurately control and evaluate the network parameters. We have recently prepared a series of model networks by reacting poly(propylene glycol) with a triisocyanate crosslinking agent. The poly(propylene glycol)s had narrow molecular weight distributions and average molecular weights between 425 and 3000, so the resulting networks had uniform average molecular weights between crosslinks. Hydrogen and carbon monoxide permeabilities in membranes formed from these networks increase with decreasing crosslink density. These results indicate increased cooperative molecular motions in the networks with longer average chain lengths between crosslinks. Increasing the average molecular weight between crosslinks also reduces the discrimination between these two gases so that the separation factors decrease. For networks prepared from mixtures of poly(propylene glycol)s with different molecular weights the gas permeabilities (but not the separation factors) depend on the molecular weight distribution.Keywords
This publication has 20 references indexed in Scilit:
- Glass transition in poly(propylene glycol) networksJournal of Polymer Science: Polymer Physics Edition, 1983
- Chemical analysis of vinyl‐crosslinked poly(dimethylsiloxane) model networks and use of the resulting structural information in the interpretation of their elastomeric propertiesJournal of Polymer Science: Polymer Physics Edition, 1980
- Model networks of end-linked polydimethylsiloxane chains. IX. Gaussian, non-Gaussian, and ultimate properties of the trifunctional networksThe Journal of Chemical Physics, 1980
- Model Networks of End-Linked Poly(dimethylsiloxane) Chains. 8. Networks Having Cross-Links of Very High FunctionalityMacromolecules, 1980
- Oxygen transmission through highly crosslinked polymersPolymer Engineering & Science, 1980
- The effect of antiplasticization on secondary loss transitions and permeability of polymersPolymer Engineering & Science, 1969
- The diffusion and solution of gases in highly crosslinked copolymersPolymer, 1968
- Permeability to gases of irradiated polyethyleneJournal of Polymer Science, 1955
- The Diffusion of Gases Through Polyvinyl Acetate1Journal of the American Chemical Society, 1954
- The Permeability of Rubberlike Substances to GasesRubber Chemistry and Technology, 1947