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Polyurethane‐mesoporous silica gas separation membranes
Author(s) -
Ghalei Behnam,
Pournaghshband Isfahani Ali,
Sadeghi Morteza,
Vakili Eshagh,
Jalili Alireza
Publication year - 2018
Publication title -
polymers for advanced technologies
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.61
H-Index - 90
eISSN - 1099-1581
pISSN - 1042-7147
DOI - 10.1002/pat.4198
Subject(s) - materials science , membrane , gas separation , mesoporous material , chemical engineering , mesoporous silica , thermal stability , polyurethane , porosity , polymer , fourier transform infrared spectroscopy , permeation , thermal diffusivity , facilitated diffusion , selectivity , composite material , organic chemistry , chemistry , engineering , catalysis , biochemistry , physics , quantum mechanics
The concept of mixed matrix membrane comprising dispersed inorganic fillers into a polymer media has revealed appealing to tune the gas separation performance. In this work, the membranes were prepared by incorporation of mesoporous silica into polyurethane (PU). Mesoporous silica particles with different pore size and structures, MCM‐41, cubic MCM‐48 and SBA‐16, were synthesized by templating method and functionalized with 3‐aminopropyltriethoxysilane (APTES). High porosity and aminated surface of the mesoporous silica enhance the adhesion of the particles to the PU matrix. The SEM and FTIR results showed strong interactions between the particles and the PU chains. Moreover, the thermal stability of the hybrid PUs improved compared to the pure polymer. Gas transport properties of the membranes were measured for pure CO 2 , CH 4 , O 2 , and N 2 gases at 10 bar and 25°C. The results showed that the gas permeabilities enhanced with increasing in the loading of modified mesoporous silica particles. High porosity and amine‐functionalized particles render opportunities to enhance the gas diffusivity and solubility through the membranes. The enhanced gas transport properties of the mixed matrix membranes reveal the advantages of mesoporous silica to improve the gas permeability (CO 2 permeability up to ~70) without scarifying the gas selectivity (α(CO 2 /N 2 )~ 30 for 5 wt% SBA‐16 content).
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