| Literature DB >> 28773990 |
Yuan Xu1,2, Xueli Gao3,4, Xiaojuan Wang5,6, Qun Wang7,8, Zhiyong Ji9, Xinyan Wang10, Tao Wu11, Congjie Gao12,13.
Abstract
A hydrophilic, hydrostable porous metal organic framework (MOF) material-MIL-101 (Cr) was successfully doped into the dense selective polyamide (PA) layer on the polysulfone (PS) ultrafiltration (UF) support to prepare a new thin film nanocomposite (TFN) membrane for water desalination. The TFN-MIL-101 (Cr) membranes were characterized by SEM, AFM, XPS, wettability measurement and reverse osmosis (RO) test. The porous structures of MIL-101 (Cr) can establish direct water channels in the dense selective PA layer for water molecules to transport through quickly, leading to the increasing water permeance of membranes. With good compatibility between MIL-101 (Cr) nanoparticles and the PA layer, the lab made TFN-MIL-101 (Cr) membranes integrated tightly and showed a high NaCl salt rejection. MIL-101 (Cr) nanoparticles increased water permeance to 2.2 L/m²·h·bar at 0.05 w/v % concentration, 44% higher than the undoped PA membranes; meanwhile, the NaCl rejection remained higher than 99%. This study experimentally verified the potential use of MIL-101 (Cr) in advanced TFN RO membranes, which can be used in the diversified water purification field.Entities:
Keywords: MIL-101 (Cr); desalination; interfacial polymerization; metal organic frameworks; reverse osmosis; thin film nanocomposite
Year: 2016 PMID: 28773990 PMCID: PMC5457272 DOI: 10.3390/ma9110870
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Figure 1Schematic representation for the membrane performance evaluation instrument.
Figure 2Schematic representation for the cages and openings of MIL-101 (Cr).
Figure 3(a) XRD pattern of MIL-101 (Cr) nanoparticles; (b) SEM image of MIL-101 (Cr) nanoparticles.
Figure 4(a) cross section SEM image of the TFC membrane; (b) cross section SEM image of the TFN-MIL-101 (Cr)-O (0.025 w/v %) membrane; (c) cross section SEM image of the TFN-MIL-101 (Cr)-O (0.05 w/v %) membrane; (d) cross section SEM image of the TFN-MIL-101 (Cr)-O (0.075 w/v %) membrane; (e) cross section SEM image of the TFN-MIL-101 (Cr)-O (0.1 w/v %) membrane; and (f) cross section SEM image of the TFN-MIL-101 (Cr)-A (0.05 w/v %) membrane.
Figure 5ATR-FTIR spectra of the TFC membrane, the TFN-MIL-101 (Cr)-A (0.05 w/v %) membrane, the TFN-MIL-101 (Cr)-O (0.05 w/v %) membrane, the TFN-MIL-101 (Cr)-O (0.05 w/v %) membrane after 50 h test and the MIL-101 (Cr) powder.
Figure 6(a) surface SEM image of the TFC membrane; (b) surface SEM image of the TFN-MIL-101 (Cr)-O (0.025 w/v %) membrane; (c) surface SEM image of the TFN-MIL-101 (Cr)-O (0.05 w/v %) membrane; (d) surface SEM image of the TFN-MIL-101 (Cr)-O (0.075 w/v %) membrane; and (e) surface SEM image of the TFN-MIL-101 (Cr)-O (0.1 w/v %) membrane.
Summary of different prepared membranes.
| Code | MIL-101 (Cr) (w/v %) | Phase for MIL-101 (Cr) Nanoparticles Addition |
|---|---|---|
| TFC | 0 | / |
| TFN-MIL-101 (Cr)-O | 0.025 | organic |
| 0.05 | ||
| 0.075 | ||
| 0.1 | ||
| TFN-MIL-101 (Cr)-A | 0.05 | aqueoous |
Figure 7(a) AFM image of the TFC membrane; (b) AFM image of the TFN-MIL-101 (Cr)-O (0.025 w/v %) membrane; (c) AFM image of the TFN-MIL-101 (Cr)-O (0.05 w/v %) membrane; (d) AFM image of the TFN-MIL-101 (Cr)-O (0.075 w/v %) membrane; and (e) AFM image of the TFN-MIL-101 (Cr)-O (0.1 w/v %) membrane.
XPS result, surface roughness, water contact angle of TFC and TFN-MIL-101 (Cr)-O membranes.
| MIL-101 (Cr) (w/v %) | Cr (%) 1 | C (%) 1 | O (%) 1 | N (%) 1 | C/N (-) | O/N (-) | ||
|---|---|---|---|---|---|---|---|---|
| 0 | 0 | 76.72 | 13.82 | 9.46 | 8.11 | 1.46 | 47 ± 3 | 62 ± 2 |
| 0.025 | 0.04 | 76.69 | 13.93 | 9.34 | 8.21 | 1.49 | 56 ± 4 | 55 ± 2 |
| 0.05 | 0.04 | 76.39 | 14.25 | 9.32 | 8.19 | 1.53 | 58 ± 3 | 52 ± 2 |
| 0.075 | 0.07 | 76.65 | 14.11 | 9.17 | 8.36 | 1.54 | 64 ± 5 | 48 ± 3 |
| 0.1 | 0.08 | 76.39 | 14.62 | 8.91 | 8.57 | 1.64 | 72 ± 3 | 46 ± 2 |
1 Cr, C, O, N element atomic concentration obtained directly from XPS; 2 Root-mean-square surface roughness obtained from AFM, error bars based on at least three measurements; 3 Apparent water contact angle, error bars based on at least three measurements.
Figure 8Effects of MIL-101 (Cr) concentration on water permeance and NaCl rejection of TFN-MIL-101 (Cr)-O membranes, (test conditions: 2000 ppm NaCl feed; 16 bar; 25 °C; 11.3 cm2 membrane area).
Membrane performance of TFN membranes.
| Filler | Concentration (w/v %) | Feed | Flux Enchancement (%) 1 | Rejection (%) | Reference |
|---|---|---|---|---|---|
| MWNTs | 0.1 | PTA/water | 258 | 98 | [ |
| SiO2 | 0.1 | PEG600/water | 121 | 94.7 | [ |
| TiO2 | 0.9 | PEG1000/water | 123 | 92.2 | [ |
| ZIF8 | 0.2 | PS(400-800)/water | 139 | 99.6 | [ |
| UZM5 | 0.02 | Lubeoil/toluebe | 102 | 96.3 | [ |
| MIL-101 (Cr) | 0.05 | NaCl/water | 144 | 99.1 | This work |
1 The flux enhancement is defined by the flux ratio of the TFN membrane to the TFC membrane.
Figure 9Water permeance of TFN-MIL-101 (Cr)-O membranes during 50 h stability test with 2000 ppm NaCl aqueous solution at 16 bar and 25 °C.
Figure 10NaCl rejection of TFN-MIL-101 (Cr)-O membranes during 50 h stability test with 2000 ppm NaCl aqueous solution at 16 bar and 25 °C.