| Literature DB >> 29335585 |
Behnam Khorshidi1, Ishita Biswas1, Tanushree Ghosh2, Thomas Thundat3, Mohtada Sadrzadeh4.
Abstract
The development of nano-enabled composite materials has led to a paradigm shift in the manufacture of high-performance nanocomposite membranes with enhanced permeation, thermo-mechanical, and antibacterial properties. The major challenges to the successful incorporation of nanohemical">particles (NPs) toEntities:
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Year: 2018 PMID: 29335585 PMCID: PMC5768769 DOI: 10.1038/s41598-017-18724-w
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) and (b) TEM images of the synthesized TiO2 NPs presenting the size of dried nanoparticles, (c) XRD spectrum of TiO2 NPs showing their anatase crystalline structure, (d) DLS measurement of TiO2 NPs capped with OA presenting their stability and size distribution in heptane.
Figure 2(a) and (b) FESEM images of the base TFC membrane; (c) TEM images of the TFC membrane; (d) FESEM images with BSE detector of the TFN4 membrane showing the TiO2-rich spots brighter than the other regions; (e) EDX color map of Ti element at the surface of TFN4 membrane; (f) TEM images of the TFN4 membrane.
Concertation of MPD, TMC and TiO2 NPs for the fabrication of TFC and TFN membranes. The invariant synthesis conditions were: 0.2 wt.% SDS, 1 wt.% CSA, 1 wt.% TEA in MPD-water solution, 30 sec IP reaction, 4 minutes heat curing at 60 °C.
| Membrane | MPD concentration in DI water (wt.%) | TMC concentration in heptane (wt.%) | Volume of TiO2 NP suspension added to TMC-heptane solution (µl) | Estimated concentration of TiO2 NPs in TMC-heptane solution (wt.%) |
|---|---|---|---|---|
| TFC | 2 | 0.2 | 0 | 0 |
| TFN1 | 2 | 0.2 | 125 | 0.006 |
| TFN2 | 2 | 0.2 | 250 | 0.0124 |
| TFN3 | 2 | 0.2 | 375 | 0.0185 |
| TFN4 | 2 | 0.2 | 500 | 0.0245 |
Figure 3Water permeation and salt rejection of the synthesized TFC and TFN membranes at 25 °C and 65 °C showing the effect of TiO2 NPs on permselectivity and thermal stability of the TFN membranes. Operating conditions: 220 ± 5.0 psi of transmembrane pressure and 1.0 ± 0.1 LPM of feed flow rate.
Figure 4(a) Schematic view of the measurement of the antibacterial activity of TFN membranes; (b) Images of the E. coli colonies formed in the plate of UV-treated (i) TFC, (ii) TFN2 and (iii) TFN4 membranes; (c) Mechanism for photocatalytic activity of TiO2 NPs under UV irradiation; (d) Number of E. coli colonies counted on the plate of TFC, TFN2 and TFN4 membranes after 30 minutes of UV irradiation.
Figure 5(a) Schematic synthesis route of TiO2 NPs via biphasic solvothermal (BST) reaction and (b) fabrication of TFN membranes via adding TiO2 NPs during interfacial polymerization (IP) reaction.