A Brief Review of Nanocellulose Based Hybrid Membranes for CO2 Separation
Abstract
:1. Introduction
1.1. Chemistry and Structure of Nanocellulose
1.2. Fabrication of Different Nanocelluloses
1.2.1. CNF
1.2.2. CNC
1.2.3. BNC
1.3. Nanocellulose Applications
2. Nanocellulose Hybrid Membranes
2.1. Nanocellulose Based Membrane Fabrication
2.1.1. Vacuum Filtration
2.1.2. Casting Evaporation and Coating
2.1.3. Electrospinning
2.2. Nanocellulose Hybrid Membrane Applications
3. Nanocellulose Hybrid Membranes for Gas Separation
3.1. Facilitated Transport Membranes
3.2. Nanocellulose/Polymeric Hybrid Membranes Based on Solution-Diffusion Mechanism
3.3. Nanocellulose/Metal Organic Frameworks Hybrid Membranes
3.4. Comparison of Gas Separation Performances and Transport Mechanisms
4. Conclusion and Perspectives
Author Contributions
Funding
Conflicts of Interest
References
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Material | CO2 Permeability (Barrer) | CO2/CH4 Selectivity | CO2/N2 Selectivity | Operation Condition | References |
---|---|---|---|---|---|
CNF | 0.45 | 262.4 | - | Single gas, 1 bar, 35 °C, 65% RH | [59] |
0.94 | 332.0 | - | Single gas, 1 bar, 35 °C, 70% RH | ||
2.64 | 428.6 | 614.59 | Single gas, 1 bar, 35 °C, 75% RH | ||
7.39 | 424.9 | 591.11 | Single gas, 1 bar, 35 °C, 80% RH | ||
17.66 | 363.7 | 515.79 | Single gas, 1 bar, 35 °C, 85% RH | ||
CNF Lup | 0.82 | 46.07 | Single gas, 1 bar, 35 °C, 40% RH | [59] | |
12.82 | 58.42 | Single gas, 1 bar, 35 °C, 50% RH | |||
49.22 | 73.98 | 214.75 | Single gas, 1 bar, 35 °C, 60% RH | ||
100.55 | 59.12 | 154.23 | Single gas, 1 bar, 35 °C, 70% RH | ||
143.56 | 36.99 | 74.31 | Single gas, 1 bar, 35 °C, 80% RH | ||
182.86 | 25.52 | 50.83 | Single gas, 1 bar, 35 °C, 90% RH | ||
CNF G2 | 0.03 | 3.01 | - | Single gas, feed pressure of 1 bar, 35 °C | [60] |
0.09 | 6.08 | - | |||
0.42 | 23.24 | - | |||
3.42 | 143.32 | - | |||
36.19 | 480.09 | - | |||
CNF/PVAm | 1.31 | 263.54 | - | Single gas, feed pressure of 1 bar, 35 °C | [60] |
12.88 | 432.00 | - | |||
38.33 | 211.72 | - | |||
83.33 | 111.73 | - | |||
243.70 | 36.63 | - | |||
CNF pure | 4.84 | 105.12 | 223.37 | Single gas, feed pressure of 1 bar, 35 °C | [86] |
8.15 | 109.01 | 200.43 | |||
23.13 | 93.41 | 100.00 | |||
53.89 | 66.75 | 79.08 | |||
127.07 | 48.13 | 64.25 | |||
L30NFC70 | 7.01 | 89.27 | 81.25 | Single gas, feed pressure of 1 bar, 35 °C | [86] |
28.82 | 100.46 | 137.17 | |||
34.30 | 62.64 | 98.21 | |||
42.74 | 35.67 | 63.10 | |||
79.00 | 20.31 | 32.93 | |||
L70NFC30 | 67.95 | 120.47 | 186.46 | Single gas, feed pressure of 1 bar, 35 °C | [86] |
91.85 | 133.13 | 221.36 | |||
118.53 | 105.12 | 195.07 | |||
156.54 | 58.25 | 133.50 | |||
209.16 | 29.21 | 86.55 | |||
CM-0 | 155 | - | 27.2 | Single gas, feed pressure 2 bar at 25 °C | [87] |
CM-10 | 93.5 | - | 17.4 | ||
CM-20 | 42.4 | - | 8.4 | ||
CM-30 | 39.3 | - | 8 | ||
basic BC membrane | 2.73 | - | - | Single gas, feed pressure of 480 Pa at room temperature | [88] |
silk fibroin-modified BC membrane | 2.69 | - | - | ||
ZnO nanoparticles-modified BC | 2.66 | - | - | ||
PEI | 2.48 | - | 36.37 | Single gas, feed pressure 100 psig, room temperature | [89] * |
PEI U 0.05% | 6.41 | - | 7.03 | ||
PEIU 0.1% | 9.31 | - | 14.48 | ||
PEIU 0.07% | 9.65 | - | 15.57 | ||
PEIB0.05% | 11.74 | - | 3.06 | ||
PEIB0.07% | 31.69 | - | 31.48 | ||
PEIB 0.1% | 50.21 | - | 9.91 | ||
CA | 0.26 | - | 66.17 | ||
CAU 0.05% | 0.32 | - | 14.35 | ||
CAU0.07% | 0.30 | - | 67.38 | ||
CAU 0.1% | 0.42 | - | 12.95 | ||
CAB 0.05% | 0.39 | - | 62.93 | ||
CAB 0.07% | 0.52 | - | 3.84 | ||
CAB 0.1% | 1.95 | - | 1.51 | ||
PCNC 0.5% | 69.92 | 31.18 | - | Mixed gas, feed pressure of 5 bar at 100RH% and RT | [90] * |
PCNC1% | 92.60 | 33.98 | - | ||
PCNC 1.5% | 100.28 | 39.16 | - | ||
PCNC 2% | 86.06 | 32.02 | - | ||
PCNC 4% | 77.60 | 29.08 | - | ||
PVA | 105 | - | 36 | Mixed gas, feed pressure of 1.2 bar, 100 RH% and 23 °C | [82] * |
PVA/L-CNF | 92.6 | - | 37.5 | ||
PVA/H-CNF | 90.7 | - | 42 | ||
PVA/P-CNF | 100 | - | 42 | ||
PVA/CNC | 128 | - | 39 | ||
MOF-TOCN | 3000 | 123 | - | - | [94] * |
CNF/UiO-66-NH2 | 139 | - | 46 | Single gases, 25 °C | [97] |
PVA | 407.16 | - | 33.74 | Mixed gas, feed pressure of 2 bar at 100 RH% and RT | [62] * |
PVA 20CNC | 480.99 | - | 39.94 | ||
PVA 40CNC | 549.78 | - | 36.16 | ||
PVA 60CNC | 616.20 | - | 42.84 | ||
PVA 80CNC | 671.95 | - | 43.60 | ||
PVA 20CNF | 408.46 | - | 41.93 | ||
PVA 40CNF | 412.85 | - | 32.61 | ||
PVA 80CNF | 470.79 | - | 34.57 |
© 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
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Dai, Z.; Ottesen, V.; Deng, J.; Helberg, R.M.L.; Deng, L. A Brief Review of Nanocellulose Based Hybrid Membranes for CO2 Separation. Fibers 2019, 7, 40. https://doi.org/10.3390/fib7050040
Dai Z, Ottesen V, Deng J, Helberg RML, Deng L. A Brief Review of Nanocellulose Based Hybrid Membranes for CO2 Separation. Fibers. 2019; 7(5):40. https://doi.org/10.3390/fib7050040
Chicago/Turabian StyleDai, Zhongde, Vegar Ottesen, Jing Deng, Ragne M. Lilleby Helberg, and Liyuan Deng. 2019. "A Brief Review of Nanocellulose Based Hybrid Membranes for CO2 Separation" Fibers 7, no. 5: 40. https://doi.org/10.3390/fib7050040
APA StyleDai, Z., Ottesen, V., Deng, J., Helberg, R. M. L., & Deng, L. (2019). A Brief Review of Nanocellulose Based Hybrid Membranes for CO2 Separation. Fibers, 7(5), 40. https://doi.org/10.3390/fib7050040