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Original Articles

Development of poly(urethane-ester)amide from corn oil and their anticorrosive studies

, &
Pages 281-293 | Received 04 Jan 2017, Accepted 25 Jan 2017, Published online: 29 Mar 2017

References

  • Auvergne, R., S. Caillol, G. David, B. Boutevin, and J. P. Pascault. 2014. Bio based thermosetting epoxy: Present and future. Chem. Rev. 114:1082–1115.
  • Alam, M., D. Akram, E. Sharmin, F. Zafar, and S. Ahmad. 2014. Vegetable oils based eco-friendly coating materials: A review article. Arab. J. Chem 7(4):469–479.
  • Sharmin, E., F. Zafar, D. Akram, M. Alam, and S. Ahmad. 2015. Recent advances in vegetable oils based environment friendly coatings: A review. Ind. Crops Prod. 76:215–229.
  • Gogoi, P., M. Boruah, S. Sharma, and S. K. Dolui. 2015. Blends of epoxidized alkyd resins based on jatropha oil and the epoxidized oil cured with aqueous citric acid solution: a green technology approach. ACS Sustainable Chem. Eng. 3:261–268.
  • Jain, J. P., M. Sokolsky, N. Kumar, and J. Domb. 2008. Fatty acid based biodegradable polymer. Polym. Rev. 48:156–191.
  • Guner, F. S., Y. Yagci, and T. Erciyes. 2006. Polymers from triglycerides oils. Prog. Polym. Sci. 31:633–670.
  • Santori, G., G. D. Nicola, M. Moglie and F. Polonara 2012. A review analyzing the industrial biodiesel production practice starting from vegetable oil refining. Applied Energy, 92:109–132.
  • Clark, A. J. and S. S. Hoong. 2014. Copolymers of tetrahydrofuran and epoxidized vegetable oils: application to elastomeric polyurethanes. Polym. Chem. 5:3238–3244.
  • Aulin, C., and G. Ström. 2013. Multilayered alkyd resin/nanocellulose coatings for use in renewable packaging solutions with a high level of moisture resistance. Ind. Eng. Chem. Res. 52:2582–2589.
  • Meshrama, P. D., R. G. Puri, A. L. Patil, and V. Gite. 2013. Synthesis and characterization of modified cottonseed oil based polyesteramide for coating applications. Prog. Org. Coat. 76:1144–1150.
  • Liang, L., C. Liu, X. Xiao, S. Chen, A. Hu, and J. Feng. 2014. Optimized synthesis and properties of surfactant-freewater-reducible acrylate-alkyd resin emulsion. Prog. Org. Coat. 77:1715–1723.
  • Alam, M., and N. Alandis. 2014. Corn oil based poly (ether amide urethane) coating material-synthesis, characterization and coating properties. Ind. Crops Prod. 57:17–28.
  • Alam, M., and N. M. Alandis. 2015. Development of poly(urethane esteramide) coatings from Pongamia glabra oil as anticorrosive applications. Int. J. Polym. Anal. Charact. 20:330–343.
  • Alam, M., and N. M. Alandis. 2015. Environmental friendly poly(ether-fattyamide) resin composition. US Patent. US 8,946,351 B1.
  • Petrovi, Z. S. 2008. Polyurethanes from vegetable oils. Polym. Rev. 48:109–155.
  • Mosiewicki, M. A., U. Casado, N. E. Marcovich, and M. I. Aranguren. 2009. Polyurethanes from tung oil: Polymer characterization and composites. Polym. Eng. Sci. 49:685–692.
  • Chaudhari, A., R. Kulkarni, P. Mahulikar, D. Sohn, and V. Gite. 2015. Development of PU coatings from neem oil based alkyds prepared by the monoglyceride route. J. Am. Oil Chem. Soc. 92:733–741.
  • Xia, Y., Z. Zhang, M. R. Kessler, B. Brehm-Stecher, and R. C. Larock. 2012. Antibacterial soybean-oil-based cationic polyurethane coatings prepared from different amino polyols. ChemSusChem 5:2221–2227.
  • Fridrihsone-Gironea, A., U. Stirna, M. Misane, B. Lazdin, and L. Deme. 2016. Spray-applied 100% volatile organic compounds free two component polyurethane coatings based on rapeseed oil polyols. Prog. Org. Coat. 94:90–97.
  • Chaudhari A., A. Kuwar, P. Mahulikar, D. Hundiwale, R. Kulkarni, and V. Gite. 2014. Development of anticorrosive two pack polyurethane coatings based on modified fatty amide of Azadirachta indica Juss oil cured at room temperature – a sustainable resource. RSC Adv. 4:17866–17872.
  • Rajput, S. D., V. V. Gite, P. P. Mahulikar, V. R. Thamke, K. M. Kodam, and A. S. Kuwar. 2015. Renewable source based non-biodegradable polyurethane coatings from polyesteramide prepared in one-pot using oleic acid. J. Am. Oil Chem. Soc. 91:1055–1063.
  • Lun, H., J. Yang, L. Jin, S. Cui, Y. Bai, X. Zhang, and Y. Li. 2015. Syntheses, structures and properties of two new coordination polymers based on D-camphoric acid and 2-phenyl-4, 6-diamino-1,3,5-triazine. J. Solid State Chem. 225:135–140.
  • Jun-Lai, Y., R. Guo, H. Wang, Z.-T. Li, and D.-W. Zhang. 2014. Synthesis and characterization of Ru(II) and Ir(III) complexes that bear camphoric 1,3-diamine ligands. J. Organomet. Chem. 768:36–41.
  • Du, M., C. P. Li, C. S. Liu, and S.-M. Fang. 2013. Design and construction of coordination polymers with mixed-ligand synthetic strategy. Coord. Chem. Rev. 257:1282–1305.
  • Zuyev, V. V., I. G. Denisov, and S. S. Skorokhodo. 1988. Liquid crystalline polyesters containing camphoric acid fragments. Polym. Sci. U.S.S.R. 30(7):1619–1625.
  • Gharibi, R., M. Yousef, and H. Yeganeh. 2013. Synthesis, characterization and assessment of poly(urethane-co-pyrrole)s derived from castor oil as anticorrosion coatings for stainless steel. Prog. Org. Coat. 76:1454–1464.
  • Abd El-Wahab H., M. Abd EL-Fattah, and M. B. M. Ghazy. 2011. Synthesis and characterization of new modified anti-corrosive polyesteramide resins incorporated pyromellitimide ring for surface coating. Prog. Org. Coat. 72:353–359.
  • Rahman, O., M. Kashif, and S. Ahmad. 2015. Nanoferrite dispersed waterborne epoxy-acrylate: Anticorrosive nanocomposite coatings. Prog. Org. Coat. 80:77–86.
  • Ramezanzadeh, B., S. Niroumandrad, A. Ahmadi, M. Mahdavian, and M. H. M. Moghadam. 2016. Enhancement of barrier and corrosion protection performance of an epoxy coating through wet transfer of amino functionalized grapheme oxide. Corros. Sci. 103:283–304.
  • Alam, M., S. M. Ashraf, and S. Ahmad. 2008. Pyridine–poly(urethane ester amide) coatings from linseed oil. J. Polym. Res. 15:343–350.
  • Li, F., G. Li., J. Zeng, and G.-H. Gao. 2014. Molybdate-doped copolymer coating for corrosion prevention of stainless steel. J. Appl. Polym. Sci. 131:40602–40609.
  • Ameer, M. A., and A. M. Fekry. 2011. Corrosion inhibition of mild steel by natural product compound. Prog. Org. Coat. 71:343–249.

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