Effect of interface on bulk polymer: control of glass transition temperature of rubber

被引:18
|
作者
Wei, Ya [1 ]
Wu, Haitao [1 ]
Weng, Gengsheng [2 ]
Zhang, Yongqiang [1 ]
Cao, Xijuan [2 ]
Gu, Zhouzhou [1 ]
Liu, Yong [1 ]
Liu, Rongjuan [1 ]
Zhou, Zhiping [1 ]
Nie, Yijing [1 ]
机构
[1] Jiangsu Univ, Inst Polymer Mat, Sch Mat Sci & Engn, 301 Xuefu Rd, Zhenjiang 212013, Peoples R China
[2] Ningbo Univ, Sch Mat Sci & Chem Engn, Ningbo Key Lab Specialty Polymers, Ningbo 315211, Zhejiang, Peoples R China
基金
中国国家自然科学基金;
关键词
Rubber nanocomposites; Glass transition temperature; Interfacial interaction; Segmental mobility; MOLECULAR-DYNAMICS SIMULATION; IN-SITU POLYMERIZATION; OXA-MICHAEL REACTION; NATURAL-RUBBER; ZINC DIMETHACRYLATE; CARBON-BLACK; MECHANICAL-PROPERTIES; MAGNESIUM METHACRYLATE; NETWORK STRUCTURE; RANDOM IONOMERS;
D O I
10.1007/s10965-018-1566-7
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
In current paper, we demonstrated that molecular dynamics and glass transition of rubber can be controlled by constructing attractive interface between rubber matrix and fillers. Based on a combination of experiments and molecular simulations, it was revealed that interfacial segmental mobility was reduced and glass transition temperatures (T(g)s) of epoxidized natural rubber (ENR) were significantly improved due to in situ polymerization of zinc dimethacrylat e (ZDMA). During curing, ZDMA polymerizes in rubber matrix, resulting in the appearance of nanodispersion phases of poly-ZDMA (PZDMA). It was demonstrated that coordination interaction exists between epoxy groups and PZDMA in interfacial regions. Furthermore, using dynamic Monte Carlo simulations, it was observed that the interfacial regions that have highest content of epoxy groups exhibit lowest segmental mobility. Then, the increase of ZDMA content leads to the rise of the fraction of absorbed interfacial segments, and thus the T(g)s of filled rubbers are improved.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Room temperature homogeneous flow in a bulk metallic glass with low glass transition temperature
    Zhao, K.
    Xia, X. X.
    Bai, H. Y.
    Zhao, D. Q.
    Wang, W. H.
    APPLIED PHYSICS LETTERS, 2011, 98 (14)
  • [32] Light scattering glass and glass transition temperature of optical polymer glass
    Tanio, N
    Koike, Y
    KOBUNSHI RONBUNSHU, 1996, 53 (10) : 682 - 688
  • [33] Glass Transition Temperature of Polymer Films That Slip
    Clough, Andrew
    Peng, Dongdong
    Yang, Zhaohui
    Tsui, Ophelia K. C.
    MACROMOLECULES, 2011, 44 (06) : 1649 - 1653
  • [34] Mobility and glass transition temperature of polymer nanospheres
    Zhang, Chuan
    Boucher, Virginie M.
    Cangialosi, Daniele
    Priestley, Rodney D.
    POLYMER, 2013, 54 (01) : 230 - 235
  • [35] Effect of cold rolling on the pressure coefficient of glass transition temperature in bulk metallic glasses
    Jana, Parijat P.
    Eckert, Juergen
    Das, Jayanta
    THERMOCHIMICA ACTA, 2021, 706
  • [36] Effect of spatial confinement on the glass-transition temperature of patterned polymer nanostructures
    Mundra, Manish K.
    Donthu, Suresh K.
    Dravid, Vinayak P.
    Torkelson, John M.
    NANO LETTERS, 2007, 7 (03) : 713 - 718
  • [37] Effect of the interaction anisotropy of the nanoparticle surface on the glass transition temperature of polymer nanocomposites
    Ueda, Taisei
    Kobayashi, Yusei
    Ikeda, Takahiro
    Yamakawa, Masashi
    POLYMER, 2025, 324
  • [38] A simulation study on the effect of nanoparticle size on the glass transition temperature of polymer nanocomposites
    Khan, Raja Azhar Ashraaf
    Qi, Hang-Kai
    Huang, Jian-Hua
    Luo, Meng-Bo
    SOFT MATTER, 2021, 17 (35) : 8095 - 8104
  • [39] Surface and interfacial effect on polymer glass transition temperature studied by positron annihilation
    Zhang, J
    Zhang, R
    Chen, H
    Li, Y
    Wu, YC
    Suzuki, R
    Sandreckski, TC
    Ohdaira, T
    Jean, YC
    RADIATION PHYSICS AND CHEMISTRY, 2003, 68 (3-4) : 535 - 539
  • [40] Reduced glass transition temperature and glass forming ability of bulk glass forming alloys
    Lu, ZP
    Li, Y
    Ng, SC
    JOURNAL OF NON-CRYSTALLINE SOLIDS, 2000, 270 (1-3) : 103 - 114