Thermal and corrosion resistance properties of unsaturated polyester/clay nanocomposites and the effect of electron beam irradiation

被引:0
作者
Elham Salehoon
Seyed Javad Ahmadi
Seyed Mohammad Razavi
Nader Parvin
机构
[1] Amirkabir University of Technology,Department of Mining and Metallurgical Engineering
[2] Nuclear Science and Technology Research Institute,undefined
来源
Polymer Bulletin | 2017年 / 74卷
关键词
Unsaturated polyester; Nanoclay; Nanocomposite; Electron beam; Irradiation;
D O I
暂无
中图分类号
学科分类号
摘要
The effect of various nanoclay loading levels on the properties of unsaturated polyester/clay nanocomposites was investigated. Nanocomposites containing 1, 3, 5, and 7 wt% organically modified nanoclay were prepared via in situ polymerization. Success of the polymerization reaction was demonstrated by the FTIR spectra. The morphological structure of the samples was examined by XRD measurements. Moreover, TEM micrograph of one of the samples was also studied. Density and water absorption measurements revealed that the incorporation of the nanoclay to the polymeric matrix could reduce the volume shrinkage of UP resin during the curing process and could improve the resistance of the material against water diffusion. DSC analysis showed that the initiation temperature and the curing temperature range decreased after the addition of nanoclay. Improvement in the thermal and corrosion resistance of the nanocomposites compared to the pure UP polymer was shown by TGA and electrochemical resistance measurements, respectively, and the best properties were observed for the nanocomposite containing 5 wt% nanoclay. Finally, the effect of electron beam irradiation on the properties of the nanocomposite samples was investigated. Irradiation with doses up to 500 kGy leads to an increase in water absorption resistance, corrosion resistance, and density of the nanocomposite. However, higher examined dose of irradiation (1000 kGy) had a deteriorating effect on the nanocomposite properties.
引用
收藏
页码:1629 / 1647
页数:18
相关论文
共 182 条
[1]  
Ray SS(2003)Polymer/layered silicate nanocomposites: a review from preparation to processing Prog Polym Sci 28 1539-1641
[2]  
Okamoto M(2013)High-yield aqueous phase exfoliation of grapheme for facile nanocomposite synthesis via emulsion polymerization J Colloid Interface Sci 410 43-51
[3]  
Hassan M(2014)Graphene modified lipophilically by stearic acid and its composite with low density polyethylene J Macromol Sci Part B Phys 53 1193-1204
[4]  
Reddy KR(2012)Properties of graphene/waterborne polyurethane nanocomposites cast from colloidal dispersion mixtures J Macromol Sci Part B Phys 51 197-207
[5]  
Haque E(2014)Hierarchical assembly of graphene/polyaniline nanostructures to synthesize free-standing supercapacitor electrode Compos Sci Technol 98 1-8
[6]  
Minett AI(2007)Synthesis and characterization of core-shell SiO J Appl Polym Sci 104 2743-2750
[7]  
Gomes VG(2015) nanoparticles/poly(3-aminophenylboronic acid) composites Appl Catal A 489 1-16
[8]  
Han SJ(2011)Hybrid nanostructures based on titanium dioxide for enhanced photocatalysis Macromol Res 19 66-71
[9]  
Lee HI(2006)Graphite oxides as effective fire retardants of epoxy resin Polym Adv Technol 18 38-43
[10]  
Jeonga HM(2009)Synthesis and properties of magnetite/poly (aniline- Synth Met 159 595-603