Hydrogenation induced deviation of temperature and concentration dependences of polymer-solvent interactions in poly(vinyl chloride) and a new eco-friendly plasticizer
详细信息    查看全文
  • 作者:Yang Liu ; Rongchun Zhang ; Xiaoliang Wang…
  • 刊名:The European Physical Journal Plus
  • 出版年:2015
  • 出版时间:June 2015
  • 年:2015
  • 卷:130
  • 期:6
  • 全文大小:1,142 KB
  • 参考文献:1.Q. Sun, D.S. Zhou, X.L. Wang, G. Xue, Macromolecules 35, 7089 (2002).ADS CrossRef
    2.J.L. Chen, G. Xue, Y.H. Li, L. Wang, G.H. Tian, Macromolecules 34, 1297 (2001).ADS CrossRef
    3.P.D. Hong, H.T. Huang, European Polymer Journal 35, 2155 (1999).CrossRef
    4.L. Li, Y. Aoki, Macromolecules 30, 7835 (1997).ADS CrossRef
    5.B.Sundaresan, A. Srinivasarao, Polym. Int. 33, 425 (1994).CrossRef
    6.M.Bolke, M. Mollhoff, P. Hallpap, J.R. Lochmann, Colloid Polym. Sci. 269, 972 (1991).CrossRef
    7.K.T. Nijenhuis, H.H. Winter, Macromolecules 22, 411 (1989).ADS CrossRef
    8.P.H. Mutin, J.M. Guenet, Macromolecules 22, 843 (1989).ADS CrossRef
    9.Y. Liu, R. Zhang, X. Wang, P. Sun, W. Chen, J. Shen, G. Xue, Polymer 55, 2831 (2014).CrossRef
    10.S. Banerjee, R. Ghosh, B. Bagchi, J. Phys. Chem. B 116, 3713 (2012).CrossRef
    11.S. Aparicio, R. Alcalde, J. Luis Trenzado, M.N. Caro, M. Atilhan, J. Phys. Chem. B 115, 8864 (2011).CrossRef
    12.E.E. Dormidontova, Macromolecules 35, 987 (2002).ADS CrossRef
    13.O. Borodin, D. Bedrov, G.D. Smith, J. Phys. Chem. B 106, 5194 (2002).CrossRef
    14.E.E. Fenn, D.E. Moilanen, N.E. Levinger, M.D. Fayer, J. Am. Chem. Soc. 131, 5530 (2009).CrossRef
    15.C. Branca, S. Magazu, G. Maisano, P. Migliardo, E. Tettamanti, J. Mol. Struct. 481, 133 (1999).ADS CrossRef
    16.C. Branca, S. Magazu, G. Maisano, P. Migliardo, J. Phys. Chem. B 103, 1347 (1999).CrossRef
    17.M. Mours, H.H. Winter, Macromolecules 29, 7221 (1996).ADS CrossRef
    18.A. Izuka, H.H. Winter, T. Hashimoto, Macromolecules 25, 2422 (1992).ADS CrossRef
    19.C. Schwittay, M. Mours, H.H. Winter, Faraday Discuss. 101, 93 (1995).ADS CrossRef
    20.Y. Aoki, L. Li, H. Uchida, M. Kakiuchi, H. Watanabe, Macromolecules 31, 7472 (1998).ADS CrossRef
    21.Y. Aoki, L. Li, M. Kakiuchi, Macromolecules 31, 8117 (1998).ADS CrossRef
    22.H. Reinecke, A. Saiani, C. Mijangos, J.M. Guenet, Macromolecules 29, 4799 (1996).ADS CrossRef
    23.M. Najeh, J.P. Munch, J.M. Guenet, Macromolecules 25, 7018 (1992).ADS CrossRef
    24.M. Dahmani, M. Skouri, J.M. Guenet, J.P. Munch, Europhys. Lett. 26, 19 (1994).ADS CrossRef
    25.M. Dahmani, N. Fazel, J.P. Munch, J.M. Guenet, Macromolecules 30, 1463 (1997).ADS CrossRef
    26.H. Reinecke, C. Mijangos, A. Brulet, J.M. Guenet, Macromolecules 30, 959 (1997).ADS CrossRef
    27.K. Saalwachter, M. Gottlieb, R.G. Liu, W. Oppermann, Macromolecules 40, 1555 (2007).ADS CrossRef
    28.P.D. Hong, C.M. Chou, Macromolecules 33, 9673 (2000).ADS CrossRef
    29.P.D. Hong, H.T. Huang, Polym. J. 32, 789 (2000).CrossRef
    30.J. Zhao, M. Xue, Y. Huang, J. Shen, Catal. Commun. 16, 30 (2011).CrossRef
    31.R. Zhang, T. Yan, B.-D. Lechner, K. Schröter, Y. Liang, B. Li, F. Furtado, P. Sun, K. Saalwächter, Macromolecules 46, 1841 (2013).ADS CrossRef
    32.Y. Gao, R. Zhang, W. Lv, Q. Liu, X. Wang, P. Sun, H.H. Winter, G. Xue, J. Phys. Chem. C 118, 5606 (2014).CrossRef
    33.D. Stauffer, A. Coniglio, M. Adam, Adv. Polym. Sci. 44, 103 (1982).
    34.Horst Henning Winter, Marian Mours, Adv. Polym. Sci. 134, 165 (1997).
    35.K.W. McCreight, J.J. Ge, M.M. Guo, I. Mann, F.M. Li, Z. Shen, X.M. Jin, F.W. Harris, S.Z.D. Cheng, J. Polym. Sci. B Polym. Phys. 37, 1633 (1999).ADS CrossRef
    36.J.J. Ge, M.M. Guo, Z.H. Zhang, P.S. Honigfort, I.K. Mann, S.Y. Wang, F.W. Harris, S.Z.D. Cheng, Macromolecules 33, 3983 (2000).ADS CrossRef
    37.S.K. Hassun, S.H.F. Almadfai, M.M.F. Aljarrah, British Polym. J. 17, 330 (1985).CrossRef
    38.E. Arunan, G.R. Desiraju, R.A. Klein, J. Sadlej, S. Scheiner, I. Alkorta, D.C. Clary, R.H. Crabtree, J.J. Dannenberg, P. Hobza, H.G. Kjaergaard, A.C. Legon, B. Mennucci, D.J. Nesbitt, Pure Appl. Chem. 83, 1637 (2011).
  • 作者单位:Yang Liu (1)
    Rongchun Zhang (2)
    Xiaoliang Wang (1)
    Pingchuan Sun (2)
    Wei Chen (1)
    Jianyi Shen (3)
    Gi Xue (1)

    1. Key Laboratory of High Performance Polymer Materials and Technology, Nanjing National Laboratory of Microstructures, Department of Polymer Science and Engineering, The School of Chemistry and Chemical Engineering, Nanjing University, 210093, Nanjing, P. R. China
    2. Key Laboratory of Functional Polymer Materials, Ministry of Education, College of Chemistry and School of Physics, Nankai University, 300071, Tianjin, P. R. China
    3. Laboratory of Mesoscopic Chemistry, The School of Chemistry and Chemical Engineering, Nanjing University, 210093, Nanjing, P. R. China
  • 刊物类别:Physics and Astronomy
  • 刊物主题:Condensed Matter Physics
    Statistical Physics, Dynamical Systems and Complexity
    Atomic, Molecular, Optical and Plasma Physics
    Applied and Technical Physics
    Theoretical, Mathematical and Computational Physics
  • 出版者:Springer Berlin / Heidelberg
  • ISSN:2190-5444
文摘
As a substitute for di-2-ethylhexyl phthalate (DOP), a new eco-friendly plasticizer, di(2-ethylhexyl) cyclohexane-1,2-dicarboxylate (DEHHP), was systematically studied in this work, mainly focusing on its interaction with poly(vinyl chloride) (PVC). The temperature and concentration dependences of polymer-solvent interactions in PVC/DEHHP were systematically investigated by rheology, low-field NMR and molecular dynamics simulations, and the results were quite different from those in PVC/DOP. With temperature increasing or PVC concentration decreasing, rheology experiments revealed that polymer-solvent interactions in PVC/DEHHP were weaker than that in PVC/DOP. Low-field 1H NMR results showed that the number of polymer-solvent complexes decreased as temperature increased. A faster decreasing rate of this number made the polymer-solvent interactions weaker in PVC/DEHHP than in PVC/DOP. Molecular dynamics simulations were further performed to study the role of polymer-solvent hydrogen bonding interactions in the systems. The radial distribution function showed that heating and dilution both resulted in faster molecular motions, and disassociation of the hydrogen bonds in the simplex hydrogen bonding system. Therefore, heating and dilution had an equivalent effect on the polymer-solvent interactions.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700