TY - JOUR
T1 - Optimizing gas separation performance in polyimide mixed matrix membranes
T2 - Investigating the influence of nanofiller nature
AU - Guo, Zhenghua
AU - Li, Qian
AU - Geng, Shining
AU - Wen, Manyu
AU - Wang, Jiahui
AU - Guo, Kaidi
AU - Yu, Liang
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/7
Y1 - 2025/7
N2 - Membrane-based gas separation technology is an efficient, energy-saving, and green separation technology for CO2 removal. Polyimide (PI) based mixed matrix membranes (MMMs) are developed to overcome the separation performance limitations of conventional PI membranes. However, the design and preparation of high-performance MMMs are still in a trial-and-error stage. In this work, to rationally design high-performance MMMs, both porous and dense nanofillers with tunable particle size are employed to fabricate MMMs and investigate the influence of nanofiller nature on the gas permeation performance of polymer matrix itself and the overall performance of MMMs. Dense PDA@SiO2 and porous NH2-UiO-66 nanofillers of similar sizes are incorporated into the PI matrix, respectively, to explore the possible application in carbon capture and helium extraction from natural gas. The effect of particle size for both nanofillers types on the physical properties of polymer matrix is studied and the contribution of nanofillers and polymeric matrix on He/N2, He/CH4, CO2/N2, and CO2/CH4 transport properties are systematically studied. PI/NH2-UiO-66 MMMs with superior gas separation performance demonstrates promising application prospects in industrial gas separation, such as carbon capture and He extraction.
AB - Membrane-based gas separation technology is an efficient, energy-saving, and green separation technology for CO2 removal. Polyimide (PI) based mixed matrix membranes (MMMs) are developed to overcome the separation performance limitations of conventional PI membranes. However, the design and preparation of high-performance MMMs are still in a trial-and-error stage. In this work, to rationally design high-performance MMMs, both porous and dense nanofillers with tunable particle size are employed to fabricate MMMs and investigate the influence of nanofiller nature on the gas permeation performance of polymer matrix itself and the overall performance of MMMs. Dense PDA@SiO2 and porous NH2-UiO-66 nanofillers of similar sizes are incorporated into the PI matrix, respectively, to explore the possible application in carbon capture and helium extraction from natural gas. The effect of particle size for both nanofillers types on the physical properties of polymer matrix is studied and the contribution of nanofillers and polymeric matrix on He/N2, He/CH4, CO2/N2, and CO2/CH4 transport properties are systematically studied. PI/NH2-UiO-66 MMMs with superior gas separation performance demonstrates promising application prospects in industrial gas separation, such as carbon capture and He extraction.
KW - Carbon capture
KW - Helium extraction
KW - Mixed matrix membrane
KW - Nanofiller
KW - Polyimide
KW - Transport mechanism
UR - http://www.scopus.com/inward/record.url?scp=105004212667&partnerID=8YFLogxK
U2 - 10.1016/j.mtener.2025.101896
DO - 10.1016/j.mtener.2025.101896
M3 - Article
AN - SCOPUS:105004212667
SN - 2468-6069
VL - 51
JO - Materials Today Energy
JF - Materials Today Energy
M1 - 101896
ER -