The effect of polymers on the phase behavior of balanced microemulsions: diblock-copolymer and comb-polymers

被引:0
|
作者
Markus Nilsson
Olle Söderman
Ingegärd Johansson
机构
[1] Lund University,Center for Chemistry and Chemical Engineering
[2] Akzo Nobel Surface Chemistry AB,undefined
来源
关键词
Bicontinuous microemulsion; Swelling of microemulsion; Diblock-copolymer; Efficiency boosting; H self-diffusion NMR;
D O I
暂无
中图分类号
学科分类号
摘要
The effect of some amphipilic diblock-copolymers and comb-polymers on a balanced Winsor III microemulsion system is investigated with the quaternary system n-octyl-β-d-glucoside/1-octanol/n-octane/D2O as basis system. The diblock-copolymers are polyethyleneoxide-co-polydodecenoxide (PEOxPEDODOy) and polyethyleneoxide-co-polybutyleneoxide (PEOxPEBUy), constituted of a straight chain hydrophilic part and a bulky hydrophobic part. Addition of the diblock-copolymer leads to an enhancement of the swelling of the middle phase by uptake of water and oil; a maximum boosting factor of 6 was obtained for PEO111PEDODO25. Nuclear magnetic resonance diffusometry yields the self-diffusion coefficients of all the components in the system. The diffusion experiments provide information on how the microstructure of the bicontinuous microemulsion changes upon addition of the polymers. The reduced self-diffusion coefficients of water and oil are sensitive to the type of polymer that is incorporated in the film. For the diblock-copolymers, as mainly used here, the reduced self-diffusion coefficient of oil and water will respond to how the polymer bends the film. When the film bends away from water, the reduced self-diffusion of the water will increase, whereas the oil diffusion will decrease due to the film acting as a barrier, hindering free diffusion. The self-diffusion coefficient of the polymer and surfactant are similar in magnitude and both decrease slightly with increasing polymer concentration.
引用
收藏
页码:1229 / 1241
页数:12
相关论文
共 50 条
  • [31] Phase behavior of binary polybutadiene copolymer mixtures as an example of weakly interacting polymers
    D. Schwahn
    L. Willner
    Applied Physics A, 2002, 74 : s358 - s360
  • [32] Micro-phase separation of diblock-copolymer melts confined in a slit from simulation calculations - effect of coarse-graining scale
    Feng, J
    Liu, HL
    Hu, Y
    Prausnitz, JM
    CHEMICAL ENGINEERING SCIENCE, 2004, 59 (8-9) : 1701 - 1710
  • [33] Phase behavior of binary polybutadiene copolymer mixtures as an example of weakly interacting polymers
    Schwahn, D
    Willner, L
    APPLIED PHYSICS A-MATERIALS SCIENCE & PROCESSING, 2002, 74 (Suppl 1): : S358 - S360
  • [34] Dynamics of the Kerr effect in the isotropic phase of comb-shaped nematic polymers
    S. G. Polushin
    S. K. Filippov
    T. S. Fiskevich
    E. B. Barmatov
    E. I. Ryumtsev
    Polymer Science Series C, 2010, 52 : 24 - 34
  • [35] Dynamics of the Kerr Effect in the Isotropic Phase of Comb-Shaped Nematic Polymers
    Polushin, S. G.
    Filippov, S. K.
    Fiskevich, T. S.
    Barmatov, E. B.
    Ryumtsev, E. I.
    POLYMER SCIENCE SERIES C, 2010, 52 (01) : 24 - 34
  • [36] PHASE-BEHAVIOR OF BINARY DIBLOCK COPOLYMER MIXTURES
    ZHAO, J
    MAJUMDAR, D
    BATES, FS
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 1994, 208 : 203 - PMSE
  • [37] Mapping the lyotropic phase behavior of diblock copolymer iongels
    Bennett, Thomas
    Blakey, Idriss
    Thurecht, Kristofer
    Jack, Kevin
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2015, 249
  • [38] Random Forest Predictor for Diblock Copolymer Phase Behavior
    Arora, Akash
    Lin, Tzyy-Shyang
    Rebello, Nathan J.
    Av-Ron, Sarah H. M.
    Mochigase, Hidenobu
    Olsen, Bradley D.
    ACS MACRO LETTERS, 2021, 10 (11) : 1339 - 1345
  • [39] Modeling the amorphous phase of comb-like polymers
    Curcó, D
    Alemán, C
    JOURNAL OF POLYMER SCIENCE PART B-POLYMER PHYSICS, 2006, 44 (06) : 953 - 966
  • [40] EFFECT OF DIBLOCK AND HOMOPOLYMER IMPURITIES ON MORPHOLOGY OF TRIBLOCK POLYMERS
    FETTERS, LJ
    MCINTYRE, D
    MEYER, BH
    JOURNAL OF APPLIED POLYMER SCIENCE, 1972, 16 (08) : 2079 - &