eprintid: 8105 rev_number: 2 eprint_status: archive userid: 1 dir: disk0/00/00/81/05 datestamp: 2023-11-09 16:19:57 lastmod: 2023-11-09 16:19:57 status_changed: 2023-11-09 16:11:48 type: article metadata_visibility: show creators_name: Idris, A. creators_name: Man, Z. creators_name: Maulud, A.S. creators_name: Uddin, F. title: Modified Bruggeman models for prediction of CO2 permeance in polycarbonate/silica nanocomposite membranes ispublished: pub keywords: Carbon dioxide; Forecasting; Nanocomposites; Nanoparticles; Polycarbonates; Silica, Bruggeman model; Dispersed particle; Interfacial voids; Interfacial volumes; Nano-composite membranes; Polycarbonate membranes; Relative permeance; Silica nanoparticles, Membranes note: cited By 17 abstract: The polycarbonate membranes performances are improved by the incorporation of silica nanoparticles into the polymer matrix. Prepared PC/silica nanocomposite membranes with various silica content are considered and the experimental relative permeance of CO2 gas at 200 kPa (2 bar) feed pressure are used as reference in the predictions using the existing theoretical models such as Maxwell-Wagner-Sillar, Bruggeman, Lewis-Nielsen, Pal, and modified Pal models. TEM and BET analysis were used to characterize the silica nanoparticles; FESEM was used to characterize the morphology of the nanocomposite membranes. The TEM image of the silica nanoparticles reveals that the nanoparticles are mostly spherical. BET results reveal that the surface area and pore diameter of the silica nanoparticles are 618.8 m2/g and 0.28 nm, respectively. The existing models have resulted in poor predictions with errors AARE of 26.52 to 28.02 . Observation by FESEM image shows that the dispersed particles are surrounded by interfacial voids and rigidified polymer layer. Modified Bruggeman models that consider the interfacial volume show appreciable prediction with AARE 4.59 being obtained with the pseudo-two-phase Bruggeman model. Moreover, when the model considered pseudo-three-phase morphology, the AARE value reduced to 3.92 . Thus, the contribution due to the interfacial rigidified layer was minimal. © 2017 Canadian Society for Chemical Engineering date: 2017 publisher: Wiley-Liss Inc. official_url: https://www.scopus.com/inward/record.uri?eid=2-s2.0-85028376437&doi=10.1002%2fcjce.22933&partnerID=40&md5=d2b155d97c2f8a3649fafe00a63a1d40 id_number: 10.1002/cjce.22933 full_text_status: none publication: Canadian Journal of Chemical Engineering volume: 95 number: 12 pagerange: 2398-2409 refereed: TRUE issn: 00084034 citation: Idris, A. and Man, Z. and Maulud, A.S. and Uddin, F. (2017) Modified Bruggeman models for prediction of CO2 permeance in polycarbonate/silica nanocomposite membranes. Canadian Journal of Chemical Engineering, 95 (12). pp. 2398-2409. ISSN 00084034