| Literature DB >> 30974909 |
Fynn Weigelt1,2, Sara Escorihuela3,4, Alberto Descalzo5,6, Alberto Tena7, Sonia Escolástico8, Sergey Shishatskiy9, Jose Manuel Serra10, Torsten Brinkmann11.
Abstract
Novel selective polymeric thin-film composite membranes (TFCMs) for applications at elevated temperatures were developed. Thin selective layers of the polyimides Matrimid 5218® and 6FDA-6FpDA were cast on a developed polybenzimidazole (PBI) porous support prepared by a phase inversion process. The TFCM properties were investigated with different gases in a wide temperature range, including temperatures up to 270 °C. The membranes showed very high thermal stability and performed well at the elevated temperatures. The development of highly thermally resistant polymeric membranes such as these TFCMs opens opportunities for application in high-temperature integrated processes, such as catalytic membrane reactors for the water-gas shift reaction in order to maximize H₂ yield.Entities:
Keywords: carbon dioxide; high thermal stability; high-temperature applications; hydrogen; thin-film composite membranes
Year: 2019 PMID: 30974909 PMCID: PMC6523132 DOI: 10.3390/membranes9040051
Source DB: PubMed Journal: Membranes (Basel) ISSN: 2077-0375
Figure 1Sketch of the production steps to form thin-film composite membranes (TFCMs) with four layers: polyphenylene sulfide (PPS) as a non-woven support, polybenzimidazole (PBI) as a porous support, Matrimid® or 6FDA-6FpDA as a selective layer, and Teflon® AF 2400 as a protective layer.
Figure 2High-temperature set-up for polymeric membranes.
Figure 3TGA thermographs for the different polymeric materials in dry Ar.
Figure 4(a) SEM cross section of the support of non-woven PPS and porous PBI structure; (b) SEM surface of the porous PBI structure; and (c) SEM cross section of the porous PBI structure.
Figure 5(a) SEM cross section of porous PBI structure; (b) SEM cross-section of the TFCM with a selective layer of Matrimid® and Teflon® AF 2400 protective layer; and (c) SEM cross section of the TFCM with a selective layer of 6FDA-6FpDA and Teflon® AF 2400 protective layer.
Separation properties for the thick films at 30 °C and the activation energy calculated in the temperature range 30–70 °C.
| Polymer | Parameter | Gases | Selectivity (-) | |||||
|---|---|---|---|---|---|---|---|---|
| H2 | CO2 | O2 | CH4 | N2 | O2/N2 | CO2/CH4 | ||
| Matrimid® | Permeability (Barrer) * | 18.9 | 7.14 | 1.62 | 0.20 | 0.26 | 6.2 | 35.7 |
| 13.0 | 8.15 | 8.93 | 18.0 | 22.6 | - | - | ||
| 6FDA-6FpDA | Permeability (Barrer) * | 74.3 | 53.4 | 10.3 | 1.12 | 1.89 | 5.4 | 47.6 |
| 3.67 | 0.57 | 3.31 | 7.02 | 6.43 | - | - | ||
| Teflon® AF 2400 | Permeability (Barrer) * | 1180 | 1248 | 504 | 155 | 222 | 2.3 | 8.1 |
| 5.14 | −3.01 | 3.40 | 9.12 | 7.38 | - | - | ||
* 1 Barrer = 10−10 cmSTP3 cm−1 s−1 cmHg−1.
Separation properties for the thin-film composite membranes at 30 °C and the activation energy calculated in the temperature range from 30 to 70 °C.
| Polymer | Parameter | Gases | ||||
|---|---|---|---|---|---|---|
| H2 | CO2 | O2 | CH4 | N2 | ||
| Matrimid® | Permeance, 102 (mSTP3 m 2 h−1 bar−1) * | 4.57 | 2.11 | 0.51 | 0.06 | 0.08 |
| Activation Energy ( | 12.3 | 6.24 | 7.13 | 20.0 | 14.6 | |
| Selective layer thickness ** (nm) | 1120 | 930 | 870 | 1280 | 1330 | |
| 6FDA-6FpDA | Permeance, 102 (mSTP3 m−2 h−1 bar−1) * | 46.1 | 41.3 | 8.35 | 1.23 | 2.05 |
| Activation Energy ( | 5.58 | −3.45 | 3.08 | 8.95 | 6.51 | |
| Selective layer thickness ** (nm) | 440 | 350 | 340 | 250 | 250 | |
* 1 mSTP3 m−2 h−1 bar−1 = 1.239 × 10−10 mol m−2 s−1 Pa−1; 1000 GPU = 2.700 mSTP3 m−2 h−1 bar−1. ** The thickness of the selective layer estimated from gas transport data obtained for isotropic polymer film and TFCM.
Single gas separation properties and activation energies (E) for the thin-film composite membranes in the range of temperatures between 30 and 266 °C for the gas pair CO2 and H2. The E values were calculated between 30 and 266 °C.
| Matrimid® | 6FDA-6FpDA | |||||
|---|---|---|---|---|---|---|
| Permeance, 102 (mSTP3 m−2 h−1 bar−1) | ||||||
| H2 | CO2 |
| H2 | CO2 |
| |
| 30 | 3.86 | 2.05 | 1.88 | 24.2 | 22.0 | 1.10 |
| 78 | 7.40 | 2.30 | 3.22 | 40.1 | 20.0 | 2.01 |
| 125 | 12.0 | 2.62 | 4.58 | 56.5 | 16.6 | 3.40 |
| 173 | 18.0 | 2.92 | 6.16 | 76.0 | 16.8 | 4.52 |
| 202 | 21.4 | 3.09 | 6.92 | 89.6 | 17.3 | 5.18 |
| 230 | 25.0 | 3.21 | 7.89 | 101 | 18.0 | 5.61 |
| 248 | 27.5 | 3.24 | 8.49 | 107 | 18.4 | 5.82 |
| 266 | 29.3 | 3.31 | 8.85 | 118 | 18.8 | 6.28 |
| 11.8 | 2.89 | - | 9.02 | −2.91 (30–125 °C) | - | |
Figure 6(a) Arrhenius plot for the TFCMs of Matrimid® and (b) 6FDA-6FpDA for temperatures between 30 and 266 °C.
Figure 7(a) The selectivity of H2/CO2 (-) over the temperature (°C) in Matrimid® and (b) in 6FDA-6FpDA for different membranes and measurement methods.