| Literature DB >> 35515577 |
Yunhua Lu1, Jianhua Zhang1, Guoyong Xiao1, Lin Li2, Mengjie Hou2, Junyi Hu1, Tonghua Wang2.
Abstract
The diamine monomer, 9,9-bis[4-(4-amino-3-hydroxylphenoxy)phenyl] fluorene (bis-AHPPF) was successfully synthesized according to our modified method. A series of hydroxyl-containing poly(ether-imide)s (HPEIs) were prepared by polycondensation of the bis-AHPPF diamine with six kinds of dianhydrides, including 1,2,3,4-cyclobutanetetracarboxylic dianhydride (CBDA), pyromellitic dianhydride (PMDA), 3,3',4,4'-biphenyl tetracarboxylic diandhydride (BPDA), 3,3',4,4'-oxydiphthalic anhydride (ODPA), 3,3',4,4'-benzophenonetetracarboxylic dianhydride (BTDA) and 4,4'-(hexafluoroisopropylidine)diphtalic anhydride (6FDA) followed by thermal imidization. The corresponding thermally rearranged (TR) membranes were obtained by solid state thermal treatment at high temperature under a nitrogen atmosphere. The chemical structure, and physical, thermal and mechanical properties of the HPEI precursors were characterized. The effects of heat treatment temperature and dianhydrides on the gas transport properties of the poly(ether-benzoxazole) (PEBO) membranes were also investigated. It was found that these HPEIs showed excellent thermal and mechanical properties. All the HPEI precursors underwent thermal conversion in a N2 atmosphere with low rearrangement temperatures. The gas permeabilities of the PEBO membranes increased with the increase of thermal treatment temperature. When HPEI-6FDA was treated at 450 °C for 1 h, the H2, CO2, O2 and N2 permeabilities of the membrane reached 239.6, 196.04, 46.41 and 9.25 Barrers coupled with a O2/N2 selectivity of 5.02 and a CO2/N2 selectivity of 21.19. In six TR-PEBOs, PEBO-6FDA exhibited the lowest rearrangement temperature and largest gas permeabilities. Therefore, thermally rearranged membranes from bis-AHPPF-based HPEIs are expected to be promising materials for gas separation. This journal is © The Royal Society of Chemistry.Entities:
Year: 2020 PMID: 35515577 PMCID: PMC9053398 DOI: 10.1039/d0ra00145g
Source DB: PubMed Journal: RSC Adv ISSN: 2046-2069 Impact factor: 4.036
Scheme 1Preparation of PEBO via thermal rearrangement.
Fig. 1Images of HPEIs and PEBO–6FDA membranes.
Fig. 2FTIR spectra of HPEIs.
Fig. 3Tanδ–T curves of HPEIs (a) in air; (b) in N2.
Thermal and mechanical properties of HPEI samples
| Samples |
|
|
|
|
| Tensile strength (MPa) | Young modulus (GPa) | Elongation at break (%) | |
|---|---|---|---|---|---|---|---|---|---|
| DMA | |||||||||
| N2 | Air | ||||||||
| HPEI–CBDA | — | 330 | 274 | 356 | 372 | 59 | 126.9 ± 2.0 | 4.4 ± 0.2 | 3.6 ± 0.2 |
| HPEI–PMDA | — | 345 | 337 | 377 | 387 | 61 | 99.3 ± 4.0 | 3.8 ± 0.1 | 3.2 ± 0.1 |
| HPEI–BPDA | 366 | 343 | 307 | 387 | 403 | 65 | 111.2 ± 3.0 | 4.1 ± 0.2 | 3.6 ± 0.1 |
| HPEI–ODPA | 318 | 295 | 296 | 365 | 378 | 60 | 103.2 ± 3.0 | 3.7 ± 0.1 | 3.3 ± 0.3 |
| HPEI–BTDA | 335 | 370 | 311 | 379 | 393 | 63 | 86.5 ± 4.0 | 4.5 ± 0.2 | 2.0 ± 0.1 |
| HPEI–6FDA | 339 | 330 | 326 | 373 | 371 | 62 | 126.8 ± 3.0 | 3.7 ± 0.1 | 4.3 ± 0.2 |
T g : glass transition temperature measured by DMA.
T d5 and Td10: 5% and 10% weight loss temperatures in TGA at 10 °C min−1 heating rate under a nitrogen atmosphere, respectively.
T TR: thermal rearrangement temperature obtained from DTG–T curves at the maximum conversion rate.
R 700: residual yield in TGA at 700 °C under a nitrogen atmosphere.
Not estimated in tanδ–T curves in N2.
Fig. 4Stress–strain curves of HPEI samples.
Physical properties of HPEI precursors
| Polymers | Density (g cm−3) | Molar mass, | Molar volume, | Van der Waals volume, | Fractional free volume, FFV |
|
|---|---|---|---|---|---|---|
| HPEI–CBDA | 1.2423 | 724 | 583.3 | 407.9 | 0.091 | 0.47 |
| HPEI–PMDA | 1.3789 | 746 | 541.0 | 379.2 | 0.089 | 0.43 |
| HPEI–BPDA | 1.3636 | 822 | 602.8 | 423.5 | 0.087 | 0.42 |
| HPEI–ODPA | 1.3810 | 838 | 606.8 | 429.0 | 0.081 | 0.43 |
| HPEI–BTDA | 1.3697 | 850 | 620.6 | 435.2 | 0.088 | 0.44 |
| HPEI–6FDA | 1.2721 | 972 | 764.1 | 512.0 | 0.129 | 0.55 |
Thermally cyclized at 250 °C for 15 min.
Estimated by assuming 100% imidization conversion.
Fractional free volume of polymer membranes by Bondi method as in eqn (1).
Fig. 5FT-IR spectra of PEBO membranes.
Fig. 6TGA–DTG curves of HPEIs measured in N2 (a)TGA curves; (b)DTG curves; (c) MS = 44 curves.
Fig. 7XRD curves (a) HPEIs; (b) PEBOs.
Fig. 8XPS spectra of PEBO–6FDA (a)wide scan spectra; (b) fitting curves of C; (c) fitting curves of O; (d) fitting curves of N.
Fig. 9DSC curves of PEBO membranes.
Gas separation performance of HPEI–6FDA treated at different temperatures
| Samples | Gas permeability | Ideal selectivity | ||||
|---|---|---|---|---|---|---|
| H2 | O2 | N2 | CO2 | CO2/N2 | O2/N2 | |
| HPEI–6FDA | 9.46 | 1.47 | 0.36 | 7.12 | 19.78 | 4.08 |
| HPEI–6FDA-350 | 67.23 | 9.93 | 2.33 | 49.28 | 21.15 | 4.26 |
| HPEI–6FDA-400 | 89.85 | 13.94 | 3.24 | 65.58 | 20.24 | 4.30 |
| HPEI–6FDA-450 | 239.6 | 46.41 | 9.25 | 196.04 | 21.19 | 5.02 |
All permeation results were obtained at 30 °C and 0.1 MPa.
1 Barrer = 10−10 cm3 (STP) cm cm−2 s−1 cmHg = 3.35 × 10−16 mol m m−2 s−1 Pa.
Ideal selectivities were obtained by the ratio of two gas permeabilities.
Gas separation properties of PEBO membranes (450 °C)
| Samples | Permeability | Ideal selectivity | |||||
|---|---|---|---|---|---|---|---|
| H2 | O2 | N2 | CO2 | CO2/N2 | O2/N2 | H2/N2 | |
| PEBO–CBDA | 65.08 | 11.53 | 2.33 | 55.64 | 23.88 | 4.95 | 27.9 |
| PEBO–PMDA | 99.38 | 18.46 | 3.25 | 87.04 | 26.78 | 5.68 | 30.6 |
| PEBO–BPDA | 116.72 | 21.82 | 5.07 | 107.88 | 21.28 | 4.30 | 23.0 |
| PEBO–ODPA | 43.06 | 9.43 | 1.20 | 35.31 | 29.42 | 7.86 | 35.9 |
| PEBO–BTDA | 78.49 | 16.47 | 2.35 | 68.38 | 29.10 | 7.01 | 33.4 |
| PEBO–6FDA | 272.34 | 60.73 | 10.58 | 245.04 | 23.16 | 5.74 | 25.7 |
| PEBO–6FDA-450 ( | 95.3 | 10.0 | 1.89 | 41.4 | 21.9 | 5.3 | 50.4 |
| PBO–6FDA-450 ( | 371 | 54.2 | 11.8 | 255 | 21.6 | 4.6 | 31.4 |
| PBO–TDA1-460 ( | 1547 | 311 | 58 | 1328 | 22.9 | 5.4 | 27 |
| PBO- | 762 | 141 | 34 | 667 | 19.6 | 4.2 | 22 |
All permeation results were obtained at 30 °C and 0.01 MPa.
1 Barrer = 10−10 cm3 (STP)cm cm−2 s−1 cmHg = 3.35 × 10−16 mol m m−2 s−1 Pa.
Ideal selectivities were obtained by the ratio of two gas permeabilities.
Fig. 10Relationship between O2 permeability and O2/N2 selectivity of PEBO membranes.