期刊文献+

NMR Analysis to Identify Biuret Groups in Common Polyureas

NMR Analysis to Identify Biuret Groups in Common Polyureas
原文传递
导出
摘要 Polyureas (PU) are well known as a class of high impact engineering materials, and widely used also in emerging advanced applications. As a general observation, most of them are only soluble in a very limited number of highly protonic solvents, which makes their chemical structure analysis a great challenge. Besides the presence of abundant hydrogen bonding, the poor solubility of PU in common organic solvents is often ascribed to the formation of biuret crosslinking in their molecular chains. To clarify the presence of biuret groups in PU has been of great interest. To this end, two samples, based on hexamethylene diisocyanate (HDI) and toluene diisocyanate (TDI) respectively, were synthesized by precipitation polymerization of each of these diisocyanates in water-acetone at 30℃. Their chemical structures were analyzed by high resolution magic angle spinning (HR-MAS) NMR, and through comparison of their NMR spectra with those of specially prepared biuret-containing polyurea oligomers, it was concluded that biuret group was absent in all the PU prepared at 30 ℃. In addition, this NMR analysis was also applied to a PU obtained by copolymerization of TDI with ethylene diamine (EDA) and water at 65 ℃ in EDA aqueous solution. It was confirmed that biuret unit was also absent in this PU and that EDA was more active than water towards TDI. The presence of EDA was crucial to the formation of uniform PU microspheres. This study provides therefore a reliable method for the analysis of PU chemical structure. Polyureas (PU) are well known as a class of high impact engineering materials, and widely used also in emerging advanced applications. As a general observation, most of them are only soluble in a very limited number of highly protonic solvents, which makes their chemical structure analysis a great challenge. Besides the presence of abundant hydrogen bonding, the poor solubility of PU in common organic solvents is often ascribed to the formation of biuret crosslinking in their molecular chains. To clarify the presence of biuret groups in PU has been of great interest. To this end, two samples, based on hexamethylene diisocyanate (HDI) and toluene diisocyanate (TDI) respectively, were synthesized by precipitation polymerization of each of these diisocyanates in water-acetone at 30℃. Their chemical structures were analyzed by high resolution magic angle spinning (HR-MAS) NMR, and through comparison of their NMR spectra with those of specially prepared biuret-containing polyurea oligomers, it was concluded that biuret group was absent in all the PU prepared at 30 ℃. In addition, this NMR analysis was also applied to a PU obtained by copolymerization of TDI with ethylene diamine (EDA) and water at 65 ℃ in EDA aqueous solution. It was confirmed that biuret unit was also absent in this PU and that EDA was more active than water towards TDI. The presence of EDA was crucial to the formation of uniform PU microspheres. This study provides therefore a reliable method for the analysis of PU chemical structure.
出处 《Chinese Journal of Polymer Science》 SCIE CAS CSCD 2018年第10期1150-1156,共7页 高分子科学(英文版)
基金 financially supported by the National Natural Science Foundation of China(Nos.21274054,21304038 and51473066) Research Foundation of University of Jinan(No.XKY1604) Science&Technology Development Plan of Shandong Province(No.2017GGX202009),China
关键词 DIISOCYANATE POLYUREA Chemical structure BIURET NMR spectroscopy Diisocyanate Polyurea Chemical structure Biuret NMR spectroscopy
  • 相关文献

参考文献2

二级参考文献96

  • 1Cheng, B., Le, Y., Cai, W. and Yu, J., J. Hazard. Mater., 2011, 185:889.
  • 2Crini, G., Dyes Pigments, 2008, 77:415.
  • 3Wang, S., Shi, X., Gan, Z. and Wang, F., Chinese J. Polym. Sci., 2015, 33(1): 128.
  • 4Wang, W., Pan, Y., Shi, K., Peng, C. and Ji, X., Chinese J. Polym. Sci., 2014, 32(12): 1646.
  • 5Wang, W., Peng, C., Shi, K., Pan, X., Zhang, H. and Ji, X., Chinese J. Polym. Sci., 2014, 32(12): 1639.
  • 6Rong, J., Ji, L. and Yang, Z., Chinese J. Polym. Sci., 2013, 31(9): 1204.
  • 7Liu, J., Yao, J., Wang, H. and Chan, K., Green Chem., 2006, 8:386.
  • 8Samatya, S., Orhan, E., Kabay, N. and Tuncel, A., Colloid Surface A, 2010, 372:102.
  • 9Han, L., Choi, H.J., Kim, D.K., Park, S.W., Liu, B. and Park, D.W., J. Mol. Catal. A, 2011, 338:58.
  • 10Kitahara, K., Hirai, Y., Yoshihama, I., Hanada, T., Nagashima, K., Arai, S. and ~amashita, J., Anal. Sci., 2001, 17(Suppl.): i1225.

共引文献4

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部