Poly(1-trimethylsilyl-1-propyne)-Based Hybrid Membranes: Effects of Various Nanofillers and Feed Gas Humidity on CO2 Permeation
Abstract
:1. Introduction
2. Experimental
2.1. Materials
2.2. Membrane Preparation
2.3. Membrane Characterization
3. Results and Discussion
3.1. Nanofiller Characterization
3.2. Thermal Properties
3.3. Membrane Morphology
3.4. FTIR
3.5. Mixed Gas Permeation Results
3.5.1. Comparison of Two Different Solvents
3.5.2. PTMSP/ZIF-8 Hybrid Membranes
3.5.3. PTMSP/ZIF-L Hybrid Membranes
3.5.4. PTMSP/ZIF-7 Hybrid Membranes
3.5.5. PTMSP/TiO2 Hybrid Membranes
4. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Peak Position (cm−1) | Peak Assignment | Ref. | |
---|---|---|---|
PTMSP | 1540 | stretching of the double C=C bond | [39] |
1240 | deformation of the SiC–H bond | ||
820 | stretching of the C–Si bond | ||
ZIF7 | 1455 | C–C stretching | [23] |
777 | C–H stretching | ||
ZIF8/ZIFL | 1584 | stretching of C–N bond found in the 2-methylimidazole ring | [40] |
1350–1500 | ring stretching | ||
900–1350 | coupled with in-plane ring bending | ||
800 | out-of-plane bending | ||
1146 | C–H vibrations | ||
1310 | C–H vibrations | ||
TiO2 | 768 | symmetric stretching vibrations in the Ti–O bond | [41] |
Solvent | Nanofiller | Nanofiller Content (wt %) | RH (%) | CO2 Permeability | CO2/N2 Selectivity (-) |
---|---|---|---|---|---|
CHCl3 | - | - | 0.2 | 33,169.3 | 2.7 |
CHCl3 | - | - | 94.1 | 30,152.0 | 2.9 |
CHCl3 | ZIF-7 | 30 | 1.3 | 32,065.0 | 5.2 |
CHCl3 | ZIF-7 | 30 | 93.4 | 28,205.3 | 5.5 |
Cyclohexane | - | - | 0.9 | 20,338.7 | 6.9 |
Cyclohexane | - | - | 93.2 | 19,074.8 | 7.6 |
Cyclohexane | TiO2 | 5 | 0.5 | 28,432.2 | 6.0 |
Cyclohexane | TiO2 | 5 | 91.7 | 19,465.6 | 6.7 |
Cyclohexane | TiO2 | 25 | 0.7 | 27,222.0 | 5.6 |
Cyclohexane | TiO2 | 25 | 93.6 | 16,550.1 | 6.6 |
Cyclohexane | ZIF-8 | 20 | 0.7 | 27,781.7 | 4.6 |
Cyclohexane | ZIF-8 | 20 | 89.9 | 14,764.1 | 5.0 |
Cyclohexane | ZIF-L | 5 | 1.1 | 25,191.4 | 6.6 |
Cyclohexane | ZIF-L | 5 | 92.0 | 20,949.6 | 7.0 |
Cyclohexane | ZIF-L | 10 | 0.5 | 24,046.1 | 6.8 |
Cyclohexane | ZIF-L | 10 | 92.5 | 19,175.1 | 7.2 |
Cyclohexane | ZIF-L | 20 | 1.1 | 1,489.2 | 13.5 |
Cyclohexane | ZIF-L | 20 | 92.3 | 1,255.1 | 14.9 |
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Dai, Z.; Løining, V.; Deng, J.; Ansaloni, L.; Deng, L. Poly(1-trimethylsilyl-1-propyne)-Based Hybrid Membranes: Effects of Various Nanofillers and Feed Gas Humidity on CO2 Permeation. Membranes 2018, 8, 76. https://doi.org/10.3390/membranes8030076
Dai Z, Løining V, Deng J, Ansaloni L, Deng L. Poly(1-trimethylsilyl-1-propyne)-Based Hybrid Membranes: Effects of Various Nanofillers and Feed Gas Humidity on CO2 Permeation. Membranes. 2018; 8(3):76. https://doi.org/10.3390/membranes8030076
Chicago/Turabian StyleDai, Zhongde, Vilde Løining, Jing Deng, Luca Ansaloni, and Liyuan Deng. 2018. "Poly(1-trimethylsilyl-1-propyne)-Based Hybrid Membranes: Effects of Various Nanofillers and Feed Gas Humidity on CO2 Permeation" Membranes 8, no. 3: 76. https://doi.org/10.3390/membranes8030076