(672f) High-Performance Hydroxyl-Functionalized Polyimides for Natural Gas Separation
AIChE Annual Meeting
2017
2017 Annual Meeting
Separations Division
Membranes for CO2 Separations - GS IV
Thursday, November 2, 2017 - 9:30am to 9:48am
Here, we discuss the effect of hydroxyl functionalization on the m-phenylene diamine moiety of 6FDA- and triptycene dianhydrides-based polyimides for gas separation applications [2, 3]. Pure-gas permeability coefficients of He, H2, N2, O2, CH4, and CO2 were measured at 35 °C and 2 bar. The introduction of hydroxyl groups in the diamine moiety of 6FDA-diaminophenol (DAP) and 6FDA/TDA-diamino resorcinol (DAR) polyimides tightened the overall polymer structure due to hydrogen bonding and charge transfer complex formation compared to unfunctionalized 6FDA/TDA-m-phenylene diamine (mPDA). 6FDA-mPDA had a pure-gas CO2 permeability of 14 Barrer and CO2/CH4 selectivity of 70. The hydroxyl-functionalized polyimides 6FDA-DAP and 6FDA-DAR exhibited very high pure-gas CO2/CH4 selectivities of 92 and 94, respectively, with a moderate CO2 permeability of 11 and 8 Barrer. It was demonstrated that hydroxyl-containing polyimide membranes maintained very high CO2/CH4 selectivity (~ 75 at CO2 partial pressure of 10 bar) due to CO2 plasticization resistance when tested under high-pressure mixed-gas conditions.
TPDA-mPDA had a pure-gas CO2 permeability of 349 Barrer and CO2/CH4 selectivity of 32. The dihydroxyl-functionalized TDA-DAR polyimide exhibited enhanced pure-gas CO2/CH4 selectivity of 46 with a moderate decrease in CO2 permeability to 215 Barrer. The CO2 permeability of TDA-DAR was â¼30-fold higher than that of a commercial cellulose triacetate membrane coupled with 39% higher pure-gas CO2/CH4 selectivity. The TDA-based dihydroxyl-containing polyimide showed good plasticization resistance and maintained high mixed-gas selectivity of 38 when tested at a typical CO2 natural gas wellhead CO2 partial pressure of 10 atm. Functionalization with hydroxyl groups may thus be a promising strategy towards attaining highly selective polyimides for economical membrane-based natural gas sweetening.
KEYWORDS
6FDA, triptycene polyimides, hydroxyl functionalization, mixed-gas permeation
REFERENCES
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Stern, S. Alexander, Hiroyoshi Kawakami, Ajay Y. Houde, and Guangbin Zhou. "Material and process for separating carbon dioxide from methane." U.S. Patent 5,591,250, issued January 7, 1997.
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Alaslai, Nasser, Bader Ghanem, Fahd Alghunaimi, Eric Litwiller, and Ingo Pinnau. "Pure-and mixed-gas permeation properties of highly selective and plasticization resistant hydroxyl-diamine-based 6FDA polyimides for CO 2/CH 4 separation." Journal of Membrane Science 505 (2016): 100-107.
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Alaslai, Nasser, Bader Ghanem, Fahd Alghunaimi, and Ingo Pinnau. "High-performance intrinsically microporous dihydroxyl-functionalized triptycene-based polyimide for natural gas separation." Polymer 91 (2016): 128-135.