| Literature DB >> 25608656 |
Zhiyi Zhang1, Wenhui Zhang2, Diansen Li3, Youyi Sun4, Zhuo Wang5, Chunling Hou6, Lu Chen7, Yang Cao8, Yaqing Liu9.
Abstract
The graphene nanosheets-based epoxy resin coating (0, 0.1, 0.4 and 0.7 wt %) was prepared by a situ-synthesis method. The effect of polyvinylpyrrolidone/reduced graphene oxide (PVP-rGO) on mechanical and thermal properties of epoxy resin coating was investigated using nanoindentation technique and thermogravimetric analysis, respectively. A significant enhancement (ca. 213% and 73 °C) in the Young modulus and thermal stability of epoxy resin coating was obtained at a loading of 0.7 wt %, respectively. Furthermore, the erosion resistance of graphene nanosheets-based epoxy resin coating was investigated by electrochemical measurement. The results showed also that the Rrcco (ca. 0.3 mm/year) of graphene nanosheets-based epoxy resin coating was far lower than neat epoxy resin (1.3 mm/year). Thus, this approach provides a novel route for improving erosion resistance and mechanical-thermal stability of polymers coating, which is expected to be used in mechanical-thermal-corrosion coupling environments.Entities:
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Year: 2015 PMID: 25608656 PMCID: PMC4307360 DOI: 10.3390/ijms16012239
Source DB: PubMed Journal: Int J Mol Sci ISSN: 1422-0067 Impact factor: 5.923
Figure 1(A) Raman spectra; and (B) AFM of GNS-based epoxy resin coating.
Figure 2SEM of GNS-based epoxy resin coating with various content of (A) 0; (B) 0.1 wt %; (C) 0.4 wt %; and (D) 0.7 wt %. The corresponding digital photographs of GNS-based epoxy resin coating are shown in the inset.
Figure 3Load-displacement curves of GNS-based epoxy resin coating with different contents of (A) 0; (B) 0.1 wt %; (C) 0.4 wt %; and (D) 0.7 wt %.
Mechanical properties of GNS-based epoxy resin coating.
| Loading | Er (GPa) | Young’s Modulus (GPa) | Hardness (GPa) | Plasticity Index (%) |
|---|---|---|---|---|
| 0 | 2.90 | 2.44 | 0.17 | 43.4 |
| 0.1% | 3.10 | 2.60 | 0.19 | 43.1 |
| 0.4% | 4.33 | 3.64 | 0.41 | 34.4 |
| 0.7% | 6.69 | 5.62 | 0.51 | 31.7 |
Figure 4Load-displacement curves of GNS-based epoxy resin coating with different contents of (A) 0; (B) 0.1 wt %; (C) 0.4 wt %; and (D) 0.7 wt %.
Figure 5The TGA curves of GNS-based epoxy resin coating with different contents of (A) 0; (B) 0.1 wt %; (C) 0.4 wt %; and (D) 0.7 wt %.
Figure 6The Tafel plots for GNS-based epoxy resin coating with various content of (A) 0; (B) 0.1 wt %; (C) 0.4 wt %; and (D) 0.7 wt %.
Anticorrosive performance of GNS-based epoxy resin coating as measured from electrochemical corrosion measurements.
| Loading | Ecorr (mV) | Icorr (μA/cm2) | Rcorr (mm/year) |
|---|---|---|---|
| 0 | −900 | 0.75 | 1.3 |
| 1.0% | −47 | 0.69 | 1.2 |
| 4% | −408 | 0.48 | 0.85 |
| 7% | −957 | 0.18 | 0.3 |
Figure 7SEM images of uncoated Zn plate (A) before; and (B) after corrosion, Zn palate protected GNS-based epoxy resin coating with various content of (C) 0; (D) 0.1 wt %; (E) 0.4 wt %; and (F) 0.7 wt %.
Scheme 1Synthetic process of GNS-based epoxy resin coating.