| Literature DB >> 32316456 |
Hyeonseo Joo1,2, Hoseong Han1,3, Sunghun Cho1.
Abstract
ElectroactiveEntities:
Keywords: composite; conductive polymer; hydrogel; multilayer graphene; nanofiber; polyaniline; supercapacitor
Year: 2020 PMID: 32316456 PMCID: PMC7240595 DOI: 10.3390/polym12040928
Source DB: PubMed Journal: Polymers (Basel) ISSN: 2073-4360 Impact factor: 4.329
Synthetic conditions of PVA-PANI HDGs with different sizes.
| Size of Product | Solution A | Solution B | 4 3-ABA (mmol) | 4 PVA (mL) | MLG Paste (mg) | |||
|---|---|---|---|---|---|---|---|---|
| 1 Diameter (cm) | 1 Height (cm) | 2 APS (mmol) | 2 DI Water (mL) | 3 5M HCl (mL) | 3 Aniline (mmol) | |||
| 12.5 | 8.8 | 3.0 | 10 | 10 | 14.8 | 1.46 | 30 | 60–300 |
| 9.1 | 5.7 | 2.2 | 7.4 | 7.4 | 10.9 | 1.08 | 22 | 44–220 |
| 5 | 3.1 | 1.2 | 4.1 | 4.1 | 6.0 | 0.59 | 12 | 24–120 |
1 Size of products were estimated by measuring diameter and height of the obtained HDGs; 2 These reactants were used to produce solution A; 3 These reactants were used to produce solution B; 4 These reactants were used to copolymerize with aniline monomer.
Figure 1Overall procedures for electrode preparation and coin cell assembly steps: (a) digital images of stainless steel substrate (up) and PVA–PANI–MLG deposited on stainless steel substrate. (b) digital images PVA–PANI–MLG electrodes (left) and PP–PE–PP separator (right) immersed 1M H2SO4 aqueous solution. (c) Each component of a coin cell supercapacitor (up) and a coin cell mounted on cell jig (down).
Figure 2(a) Overall synthetic route for producing PVA–PANI–MLG HDG with tunable scalability. (b) Schematic illustration for a coin cell supercapacitor assembled with PVA–PANI–MLG HDG as electrode materials.
Figure 3FE-SEM images of PVA–PANI HDGs with (a) 5 wt.% PVA, (b) 10 wt.% PVA, and (c) 15 wt.% PVA. (d) FE-SEM image of PVA–PANI–MLG HDG with 5 wt.% PVA and 3 wt.% MLG.
Figure 4(a) CV curves, (b) GCD curves, (c) rate capability curves, and (d) retention rate curves of PVA–PANI HDGs with different PVA contents.
Supercapacitor performances based on PVA–PANI HDGs with different PVA contents.
| PVA Content (%) | 1 Areal Capacitance ( | 1 Volumetric Capacitance ( | 1 Gravimetric Capacitance ( | 2 Retention Rate at 7.2 mA/cm2 (%) | 3 Retention Rate after 3000 Cycles (%) |
|---|---|---|---|---|---|
| 5 | 344.8 | 114.9 | 210.1 | 82.0 | 84.3 |
| 10 | 234.1 | 78.0 | 142.6 | 80.2 | 80.6 |
| 15 | 114.7 | 38.2 | 69.9 | 77.5 | 78.2 |
1 These values were calculated according to GCD analyses. 2 These values were obtained from rate capability tests from different ranges of currents from 0.30 mA/cm2 to 7.2 mA/cm2. 3 These values were obtained from 3000 cycles of GCD tests.
Figure 5(a) FTIR spectra and (b) stress-strain (S-S) curves of PVA–PANI–MLG HDGs with different MLG contents: PVA–PANI (red), 3.0 wt.% MLG (blue), and 4.5 wt.% MLG (green). The concentration of PVA was fixed at 5 wt.%.
IR absorption bands of PVA–PANI–MLG HDGs.
| 1,2 Wavenumber (cm−1) | Assignments of Characteristic Bands |
|---|---|
| 638 | out-of-plane bending for NH2 of aromatic amine |
| 787 | out-of-plane bending for S=O of ammonium persulfate (APS) |
| 826, 877 | out-of-plane bending of |
| 1040 | symmetric stretching for S=O of ammonium persulfate (APS) |
| 1227 | C–N stretching of benzenoid amine |
| 1288 | C–N stretching of secondary aromatic amine |
| 1330, 1410 | B–O stretching of boronate crosslinks |
| 1472 | C=C stretching of benzenoid ring |
| 1169, 1593–1597 | C=C stretching of quinoid ring |
| 1553 | out-of-plane bending for N–H of secondary aromatic amine |
| 1669 | C=C stretching of aromatic ring |
| 1995, 2118, 2330 | out-of-plane bending for imine radical cation |
| 2833–2837 | C–H symmetric stretching |
| 2947–2955 | C–H asymmetric stretching |
| 3218–3222 | N–H stretching of boronic acid and PANI chains |
| 3357–3646, 3362–3650 | O–H stretching of boronic acid and PVA chains |
1 These bands were found in FTIR spectra of PVA–PANI–MLG HDGs. 2 The concentration of PVA was fixed at 5 wt.%.
Mechanical properties of PVA–PANI HDGs with different MLG content.
| 1 MLG Content (wt.%) | 2 Ultimate Tensile Stress (MPa) | 2 Elongation at a Break Point (%) | 3 Young’s Moduli (MPa) |
|---|---|---|---|
| 3.0 | 8.10 | 35.79 | 42.66 |
| 4.5 | 6.11 | 28.63 | 20.66 |
| pristine PVA-PANI | 5.38 | 26.88 | 16.13 |
1 The concentration of PVA was fixed at 5 wt.%. 2 These values were measured from stress-strain (S-S) curves of the samples during tensile tests. 3 Young’s moduli (E, MPa) was determined according to an equation E = stress (MPa)/strain (%).
Figure 6(a) CV curves, (b) GCD curves, (c) Nyquist plots, (d) rate capability curves, (e) cycling stability curves of PVA–PANI/MLG HDGs with different MLG contents: 3 wt.% (red), 4.5 wt.% (blue), 1.5 wt.% (green), 0.5 wt.% (purple), and 0 wt.% (yellow green). (f) Ragone plots for PVA–PANI–MLG and PVA–PANI HDGs. The concentration of PVA was fixed at 5 wt.%.
Supercapacitor performances based on PVA–PANI–MLG HDGs with different MLG contents.
| 1 MLG Content (%) | 2 Areal Capacitance ( | 2 Volumetric Capacitance ( | 2 Mass Capacitance ( | 3 Retention Rate at 7.2 mA/cm2 (%) | 4 Retention Rate after 3000 Cycles (%) |
|---|---|---|---|---|---|
| 0 | 344.8 | 114.9 | 210.1 | 82.0 | 84.3 |
| 0.5 | 382.7 | 127.6 | 233.2 | 85.9 | 87.6 |
| 1.5 | 449.5 | 149.8 | 273.9 | 90.1 | 90.6 |
| 3.0 | 498.9 | 166.3 | 304.0 | 91.6 | 92.6 |
| 4.5 | 479.3 | 159.8 | 292.1 | 76.0 | 80.8 |
1 The concentration of PVA was fixed at 5 wt.%. 2 These values were calculated according to GCD analyses. 3 These values were obtained from rate capability tests from different ranges of currents from 0.30 mA/cm2 to 7.2 mA/cm2. 4 These values were obtained from 3000 cycles of GCD tests.
Performance comparison of state-of-art supercapacitors based on PANI and graphene.
| Electrode Material | Specific Capacitance | Cycling Stability (Cycles) | Tensile Strength | Ref. |
|---|---|---|---|---|
| PVA–PANI | 306 F/cm2 | 90% (1000) | 5.3 MPa | 5 |
| N-doped graphene/PANI hydrogels | 514.3 F/g | 87.1% (1000) | - | 28 |
| PANI/rGO | 423 F/g | 75.0% (1000) | - | 29 |
| PANI/rGO/functionalized carbon cloth | 0.47 F/cm2 | 75.5% (10,000) | - | 30 |
| PANI nanorod arrays/graphene | 0.23 F/cm2 | 86.9% (8000) | - | 31 |
| rGO/Fe3O4/PANI composite | 283.4 F/g | 78.0% (5000) | - | 32 |
| PVA–PANI–MLG hydrogel | 344.8 F/cm2 | 92.6% (3000) | 8.10 MPa | This work |