SANS and DSC study of water distribution in epoxy-based hydrogels

被引:15
|
作者
Krakovsky, Ivan [1 ]
Szekely, Noemi K. [2 ]
机构
[1] Charles Univ Prague, Fac Math & Phys, Dept Macromol Phys, CR-18000 Prague 8, Czech Republic
[2] Budapest Neutron Ctr, Res Inst Solid State Phys & Opt, H-1525 Budapest, Hungary
关键词
Epoxy hydrogel; Nanophase separation; Small-angle neutron scattering; Differential scanning calorimetry; ALPHA; OMEGA-DIAMINO TERMINATED POLY(OXYPROPYLENE)-BLOCK-POLY(OXYETHYLENE)-BLOCK-POLY(OXYPROPYLENE); ANGLE NEUTRON-SCATTERING; AQUEOUS-SOLUTIONS; BLOCK-COPOLYMERS; THERMAL TRANSITIONS; SWELLING BEHAVIOR; NETWORKS; OXIDE); THERMODYNAMICS; TEMPERATURE;
D O I
10.1016/j.eurpolymj.2011.09.001
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Distribution of water in stoichiometric hydrophilic epoxy network swollen in heavy water to different degrees (epoxy-based hydrogels) at 25 degrees C has been investigated by small-angle neutron scattering (SANS) and differential scanning calorimetry (DSC). Nanophase separated structure of the hydrogels consisting of water-rich and water-poor domains was revealed by SANS. Two regimes for hydrogel structure were found: (a) at low water content hydrogel consists of isolated water-rich domains dispersed in continuous water-poor phase and (b) at high water content the water-rich domains form another continuous phase. Isosbestic point of scattering curves was found by SANS in the latter region and attributed to conservation of Porod's length of the nanophase separated structure. Thermal properties of the system are qualitatively different in the two regions: in the former one the glass transition temperature decreases with growing water content while in the latter one it remains constant. Percolation threshold separating both regimes is reflected in a jump of glass transition temperature and inversion of the dependence of the specific heat difference at glass transition. (C) 2011 Elsevier Ltd. All rights reserved.
引用
收藏
页码:2177 / 2188
页数:12
相关论文
共 50 条
  • [31] DSC Analysis on Water State of Salvia Hydrogels
    Yudianti, Rike
    Karina, Myrtha
    Sakamoto, Masahiro
    Azuma, Jun-ichi
    MACROMOLECULAR RESEARCH, 2009, 17 (12) : 1015 - 1020
  • [32] Epoxy-based electroactive polymer gels
    Yoshioka, Y
    Calvert, P
    EXPERIMENTAL MECHANICS, 2002, 42 (04) : 404 - 408
  • [33] Epoxy-based fibre reinforced nanocomposites
    Njuguna, James
    Pielichowski, Krzysztof
    Alcock, Jeffrey R.
    ADVANCED ENGINEERING MATERIALS, 2007, 9 (10) : 835 - 847
  • [34] Epoxy-based liquid crystalline elastomers
    Torbati, Amir
    Mather, Patrick T.
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2011, 242
  • [35] EPOXY-BASED MACHINERY BEDDING COMPOUND
    不详
    MACHINERY AND PRODUCTION ENGINEERING, 1971, 118 (3049): : 631 - &
  • [36] EPOXY-BASED PLASTICS AS A MATERIAL OF CONSTRUCTION
    COOKE, B
    PROCESS ENGINEERING, 1975, (JUL) : 44 - 46
  • [37] Investigations of epoxy-based adhesives with PLEPS
    Egger, W.
    Sperr, P.
    Koegel, G.
    Wetzel, M.
    Gudladt, H. -J.
    APPLIED SURFACE SCIENCE, 2008, 255 (01) : 209 - 212
  • [38] Porous macroradical epoxy-based supercapacitors
    Capricho, Jaworski C.
    Subhani, Karamat
    Chai, Boon Xian
    Bryant, Gary
    Salim, Nisa
    Juodkazis, Saulius
    Fox, Bronwyn Louise
    Hameed, Nishar
    POLYMER, 2022, 259
  • [39] DSC analysis on water state of salvia hydrogels
    Rike Yudianti
    Myrtha Karina
    Masahiro Sakamoto
    Jun-ichi Azuma
    Macromolecular Research, 2009, 17 : 1015 - 1020
  • [40] Toughening of epoxy-based hybrid nanocomposites
    Carolan, D.
    Ivankovic, A.
    Kinloch, A. J.
    Sprenger, S.
    Taylor, A. C.
    POLYMER, 2016, 97 : 179 - 190