A Review on the Production and Purification of Biomass-Derived Hydrogen Using Emerging Membrane Technologies
Abstract
:1. Introduction
1.1. Hydrogen Energy System
1.2. Hydrogen Production from Biomass
1.3. Membrane for Hydrogen Separation
2. Polymeric Membranes for Hydrogen Separation
2.1. The Performance of the Polymeric Membrane for Hydrogen Separation
2.2. The Strategy of Improving the Polymeric Membrane
2.3. Current Utilization Status and Future Perspectives for Biomass Processing
3. Dense Metal Membranes for Hydrogen Separation
3.1. The Development of Dense Metal Membranes for Hydrogen Separation
3.2. Current Industrialization Status and Future Perspectives for Biomass Processing
4. Microporous Membranes for Hydrogen Separation
4.1. Zeolite Membranes
4.2. MOF Membranes
4.3. Other Microporous Membranes
5. Membrane Reactors for Hydrogen Separation
6. Conclusions and Future Perspective
Acknowledgments
Conflicts of Interest
References
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Parameters | Membrane Type | ||
---|---|---|---|
Polymeric | Microporous | Dense Metal | |
Typical composition | Polyimide; Cellulose acetate | Silica; Zeolites; Metal-organic frameworks | Palladium; Palladium alloys |
Diffusion mechanism | Solution diffusion | Molecular sieving | Solution diffusion |
Driving force † | Partial pressure difference | Partial pressure difference | Partial pressure difference |
Operation temperature | ≤110 °C | ≤1000 °C | 150–700 °C |
Relative permeability | Low—moderate | Moderate–high | Low |
Typical selectivity | Moderate | Low—moderate | Very high |
Relative cost | Low | Low—moderate | Moderate—High |
(a) | |||||
Polymers | T (°C) | P (atm) | Permeability (Barrer a) | H2/CO2 Selectivity | |
H2 | CO2 | ||||
Ethyl Cellulose | 30 | - | 87 | 26.5 | 3.28 |
Polyetherimide | 30 | - | 7.8 | 1.32 | 5.91 |
Polyphenyleneoxide | 30 | - | 113 | 75.8 | 1.49 |
Polysulfone | 30 | - | 14 | 5.6 | 2.50 |
Polymethylpentene | 30 | - | 125 | 84.6 | 1.48 |
Polyimide (Matrimid®) | 30 | - | 28.1 | 10.7 | 2.63 |
Polyethersulfone | 35 | 3.5 | 8.96 | 3.38 | 2.65 |
Polystyrene | 30 | 1.36 | 23.8 | 10.4 | 2.29 |
Poly(vinylidene fluoride) (Kynar) | 30 | 1.36 | 2.4 | 1.2 | 2.00 |
Poly(methyl methacrylate) | 30 | 1.36 | 2.4 | 0.6 | 4.00 |
(b) | |||||
Polymers | T (°C) | P (atm) | Permeability (Barrer b) | CO2/H2 Selectivity | |
CO2 | H2 | ||||
Polytrimethylsilylpropyne | 25 | - | 79 | 36.1 | 2.19 |
Poly(4-methyl-2-pentyne) | 25 | - | 10700 | 5800 | 1.84 |
Polyphosphazene | 30 | 2.04 | 250 | 25 | 10.00 |
Poly(tert-butylacetylene) | 25 | 1 | 560 | 300 | 1.87 |
Poly(amide-6-b-ethylene oxide) | 25 | 4 | 132 | 20 | 6.60 |
Poly(amide-6-b-ethylene oxide) Pebax® [51] | 35 | - | 220 | 22 | 10 |
Poly(ethylene glycol) diacrylate | 23 | 12 | - | 83 | 11.00 |
Crosslinked PEG copolymer b | 35 | 17 | - | - | 9.40 |
Crosslinked PEG copolymer b | −20 | 17 | 410 | - | 31.00 |
Polyether | - | - | 586 | 76.6 | 7.70 |
Poly(styrene-co-butadiene) | 30 | - | 15.3 | 7.9 | 1.94 |
poly(ethylene oxide)-poly(butylene terephthalate) [52] | 30 | - | 190 | - | 13 |
Poly(dimethyl siloxane) (PDMS) c | 23 | 1.36 | 3200 | 950 | 3.36 |
Supplier | Membrane Materials | Module Types | Selectivity | Reference | ||
---|---|---|---|---|---|---|
H2/N2 | H2/CH4 | H2/CO | ||||
Air products | Polysulfone | Hollow fiber | 39 | 24 | 23 | [67] |
Air liquid | Polyimide/polyaramide | Hollow fiber | - | - | - | [34] |
Ube | Polyimide | Hollow fiber | 35.4 | - | 30 | [68] |
UOP/Separex | Cellulose acetate | Spiral wound | 33 | 26 | 21 | [69] |
Supplier | Material | Dimension Parameters | Applications | Performance |
---|---|---|---|---|
Hysep-Energy research centre of The Netherlands | Pd-Au/YSZ/SS | 0.04/0.1/0.5 m2 | Example: Coal to fuel project in New Zealand | 3.5-6 Nm3/h with 99.5–99.995% hydrogen at 21 Bar pressure difference, from 33% reforming H2 |
Power + Energy/United Technologies Research Center | Pd-Cu trimetallic alloy | - | Coal gasification Syngas | 0.23 mol/m2 s with 99.9999% hydrogen |
Tokyo Gas | Pd-Y(Gd)-Ag/SS | - | reforming | 40 Nm3/h with 99.99% hydrogen |
CRI/Criterion-Shell | Pd and Pd-alloy | OD: 2 inch. L:48 inch | - | 40-70 Nm3/h m2 h1 bar0.5 with >99% hydrogen |
REB | Pd and Pd-alloy | OD: 1/8 inch | fluidized bed membrane reactor | 0.2 mol/m2 s on Pd-Cu alloy membrane at 673K, 3.03 Bar of syngas conditions |
Gas | Kinetic Diameter (Å) | Zeolites | Aperture Pore Size (Å) | MOFs and ZIFs | Aperture Pore Size (Å) |
---|---|---|---|---|---|
H2 | 2.89 | MFI | 5.4 | ZIF-7 | 3.0 |
CO2 | 3.3 | NaA | 4.1 | ZIF-8 | 3.4 |
N2 | 3.64 | SAPO-34 | 0.38 | ZIF-22 | 3.0 |
CO | 3.76 | DDR | 3.6 × 4.4 | ZIF-90 | 3.5 |
CH4 | 3.8 | NaP-GIS | 4.5 × 3.1 | MOF-5 | 15.6 |
SF6 | 5.5 | AlPO4 | 4.0 | HKUST-1 | 9 |
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Yin, H.; Yip, A.C.K. A Review on the Production and Purification of Biomass-Derived Hydrogen Using Emerging Membrane Technologies. Catalysts 2017, 7, 297. https://doi.org/10.3390/catal7100297
Yin H, Yip ACK. A Review on the Production and Purification of Biomass-Derived Hydrogen Using Emerging Membrane Technologies. Catalysts. 2017; 7(10):297. https://doi.org/10.3390/catal7100297
Chicago/Turabian StyleYin, Hang, and Alex C.K. Yip. 2017. "A Review on the Production and Purification of Biomass-Derived Hydrogen Using Emerging Membrane Technologies" Catalysts 7, no. 10: 297. https://doi.org/10.3390/catal7100297
APA StyleYin, H., & Yip, A. C. K. (2017). A Review on the Production and Purification of Biomass-Derived Hydrogen Using Emerging Membrane Technologies. Catalysts, 7(10), 297. https://doi.org/10.3390/catal7100297