| Literature DB >> 30966401 |
Anatoly Filippov1,2, Daria Petrova3,4, Irina Falina5, Natalia Kononenko6, Evgenii Ivanov7, Yuri Lvov8,9, Vladimir Vinokurov10.
Abstract
Three types of bi-layer hybrid nanocomposites on the base of perfluorinated cation-exchange membrane MF-4SC (Russian analogue of Nafion®-117) were synthesized and characterized. It was found that two membranes possess the noticeable asymmetry of the current⁻voltage curve (CVC) under changing their orientation towards the applied electric field, despite the absence of asymmetry of diffusion permeability. These phenomena were explained in the frame of the "fine-porous model" expanded for bi-layer membranes. A special procedure to calculate the real values of the diffusion layers thickness and the limiting current density was proposed. Due to asymmetry effects of the current voltage curves of bi-layer hybrid membranes on the base of MF-4SC, halloysite nanotubes and platinum nanoparticles, it is prospective to assemble membrane switches (membrane relays or diodes) with predictable transport properties, founded upon the theory developed here.Entities:
Keywords: asymmetry of current–voltage characteristics; diffusion permeability; halloysite; hybrid membrane; modeling transport through a bi-layer membrane; perfluorinated sulfocationic membrane; platinum nanoparticles
Year: 2018 PMID: 30966401 PMCID: PMC6415090 DOI: 10.3390/polym10040366
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Figure 1Electron micrography (TEM) of halloysite nanotubes modified over the outer surface by Pt nanoparticles.
Figure 2AFM-images of the surface of MF-4SC/halloysite+Pt membrane layer 2 ((a) clear polymer, 15 µm × 15 µm) and membrane layer 1 (modified polymer, 50 µm × 50 µm, (b) semi-contact mode; (c) phase-contrast mode).
Figure 3The bilayer membrane prepared by 2 steps method.
Composition of synthesized bi-layer membranes.
| Bi-Layer Membrane | Thickness, | Thin Layer (1) | Thick Layer (2) |
|---|---|---|---|
| No. 1 | 221 | MF-4SC modified with 4 wt % of halloysite nanotubes encapsulated by 2 wt % platinum nanoparticles | Pristine MF-4SC membrane |
| No. 2 | 181 | MF-4SC modified with 4 wt % of halloysite nanotubes | Pristine MF-4SC membrane |
| No. 3 | 166 | MF-4SC modified with 4 wt % of halloysite nanotubes encapsulated by 2 wt % platinum nanoparticles | MF-4SC membrane modified with 4 wt % of halloysite nanotubes |
Figure 4SEM micrography (a) and optical microscope image; (b) of the normal cross-section of the bi-layer membrane No. 1.
Figure 5Typical stress–strain curve of the one-layer MF-4SC membrane.
Figure 6Dependence of elastic modulus (E) and strength limit (σ) on content of halloysite nanotubes in the film.
Figure 7Two-chamber cell for measuring diffusion permeability.
Experimental diffusion permeability in NaCl solution for three bi-layer hybrid membranes based on MF-4SC.
| 0.1 | 5.92/6.30 | 5.84/5.23 | 4.38/5.13 |
| 0.25 | 9.73/10.9 | 9.12/11.0 | 8.69/8.40 |
| 0.5 | 15.5/14.4 | 15.8/16.5 | 13.8/13.5 |
| 0.75 | 17.8/19.7 | 17.3/19.2 | 14.7/15.5 |
| 1.0 | 20.8/21.9 | 20.4/19.7 | 16.9/17.7 |
Figure 8The scheme of current–voltage curve (CVC) measuring procedure.
Parameters of the CVC of composite bi-layer membranes Nos. 1–3 from Table 1.
| Orientation towards Anode by | Δ | Slope of the Ohmic Part (Δ | Slope of the Limiting Part (Δ | Slope of the Overlimiting Part (Δ | |
|---|---|---|---|---|---|
| thinner layer 1 | 35.79 ± 0.49 | 1.34 ± 0.01 | 347.0 ± 0.1 | 4.51 ± 0.01 | 158.7 ± 16.8 |
| thicker layer 2 | 33.57±1.32 | 1.42 ± 0.01 | 383.0 ± 0.2 | 3.94 ± 0.12 | 194.5 ± 5.2 |
| thinner layer 1 | 42.02 ± 0.22 | 2.02 ± 0.01 | 337.6 ± 0.1 | 2.70 ± 0.01 | 135.2 ± 4.3 |
| thicker layer 2 | 35.99 ± 0.02 | 1.75 ± 0.01 | 314.6 ± 0.1 | 2.52 ± 0.00 | 153.2 ± 10.2 |
| thinner layer 1 | 40.40 ± 0.16 | 1.57 ± 0.03 | 317.7 ± 0.1 | 3.14 ± 0.00 | 148.2 ± 21.5 |
| thicker layer 2 | 34.38 ± 0.54 | 1.27 ± 0.03 | 318.7 ± 0.1 | 4.85 ± 0.00 | 180.7 ± 0.1 |
Calculated physicochemical parameters of the hybrid bi-layer membranes.
| Bi-Layer Membrane | ||||
|---|---|---|---|---|
| 0.545 | 0.569 | 10.54 | 44.94 | |
| 0.555 | 0.569 | 10.43 | 44.94 | |
| 0.480 | 0.527 | 8.42 | 35.88 |
Figure 9Concentration dependences of P (1) and P (2) for membrane No. 2 (according to Table 1 and Equation (1)).
Physicochemical parameters of the hybrid bi-layer membranes.
| Bi-Layer Membrane | ||||||
|---|---|---|---|---|---|---|
| No. 1 (P/P + H + Pt), | 1.22 | 1.08 | 4.71 | 23.68 | 0.447 | 0.527 |
| No. 2 (P/P + H), | 1.15 | 1.08 | 5.04 | 23.68 | 0.483 | 0.527 |
| No. 3 (P + H/P + H + Pt), | 1.22 | 1.15 | 3.31 | 16.44 | 0.393 | 0.458 |
Calculated thicknesses δ of diffusion layers of the hybrid bi-layer membranes.
| Bi-Layer Membrane |
|
| |||
|---|---|---|---|---|---|
| 221 | 464/365 = 1.27 | 1.011 ± 0.014 | 594/388 = 1.53 | 0.948 ± 0.037 | |
| 181 | 394/310 = 1.27 | 0.972 ± 0.005 | 558/361 = 1.55 | 0.833 ± 0.001 | |
| 166 | 415/323 = 1.28 | 0.857 ± 0.003 | 586/380 = 1.54 | 0.729 ± 0.012 | |
Figure 10(a) Experimental CVCs of hybrid bi-layer membrane No. 1 (P/P + H + Pt) under different orientation in the measuring cell; (b) Experimental CVCs of hybrid bi-layer membrane No. 2 (P/P + H) under different orientation in the measuring cell; (c) Experimental CVCs of hybrid bi-layer membrane No. 3 (P + H/P + H + Pt) under different orientation in the measuring cell.