Polymer-Modified Microemulsions as a New Type of Template for the Nanoparticle Formation

被引:0
|
作者
Koetz, Joachim [1 ]
Note, Carine [1 ]
Baier, Jennifa [1 ]
Lutter, Stefanie [1 ]
机构
[1] Univ Potsdam, Inst Chem, D-14467 Potsdam, Germany
关键词
BASO4; NANOPARTICLES; STRUCTURAL-CHANGES; REVERSE MICELLES; POLYELECTROLYTE; SULFIDE; PHASE; AOT;
D O I
暂无
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Polymer-modified microemulsions can be obtained by adding polymers to a mixture consisting of water, oil, and a cosurfactant. Depending on the type of polymer used quite different effects can be observed. For example water soluble polymers can be incorporated into the individual water droplets of a water-in-oil microemulsion, can induce a cluster formation, or the formation of a sponge phase, that means a bicontinuous microemulsion. It is shown that the cationic polyelectrolyte, i.e. poly (diallyldimethylammonium chloride) (PDADMAC), of low molar mass can be incorporated up to a polymer concentration of 20% into individual inverse microemulsion droplets consisting of water, heptanol, and a surfactant with a sulfobetaine head group (SB). These PDADMAC-modified microemulsions, well characterized by means of conductometry, rheology, calorimetry, H-1 NMR self-diffusion, ultrasound relaxation measurements, and electron microscopy, can be successfully used as a template for the formation of ultrafine spherical BaSO4 nanoparticles. By adding nonionic polymers like poly (N-vinyl-2-pyrrolidone) or poly (ethyleneglycol) to the quasiternary system water/toluenepentanol/ sodium dodecyl sulfate (SDS), polyampholytes or polycations, one can induce the formation of a single phase channel between the water-in-oil and the oil-in-water microemulsion. The resulting sponge phase can be used as a template for producing BaSO4 nanorods.
引用
收藏
页码:243 / 255
页数:13
相关论文
共 50 条
  • [41] ANALYTICAL APPLICATIONS OF POLYMER-MODIFIED ELECTRODES
    GUADALUPE, AR
    WIER, LM
    ABRUNA, HD
    AMERICAN LABORATORY, 1986, 18 (08) : 102 - &
  • [42] Accumulated strain in polymer-modified asphalts
    Polacco, Giovanni
    Stastna, Jiri
    Zanzotto, Ludovit
    RHEOLOGICA ACTA, 2008, 47 (5-6) : 491 - 498
  • [43] Constructability of polymer-modified asphalts in Alaska
    Aleshire, L
    Mann, M
    Zubeck, H
    Raad, L
    Ryer, J
    COLD REGIONS IMPACT ON CIVIL WORKS, 1998, : 176 - 187
  • [44] Polymer-Modified Halloysite Composite Nanotubes
    Li, Cuiping
    Liu, Jiguang
    Qu, Xiaozhong
    Guo, Baochun
    Yang, Zhenzhong
    JOURNAL OF APPLIED POLYMER SCIENCE, 2008, 110 (06) : 3638 - 3646
  • [45] COMPOSITE MECHANISM OF POLYMER-MODIFIED CEMENT
    SAKAI, E
    SUGITA, J
    CEMENT AND CONCRETE RESEARCH, 1995, 25 (01) : 127 - 135
  • [46] Viscosity function in polymer-modified asphalts
    Stastna, J
    Zanzotto, L
    Vacin, OJ
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2003, 259 (01) : 200 - 207
  • [47] ORGANIC POLYMER-MODIFIED CEMENT CONCERET
    Amareanu, Marin
    Melita, Larisa
    STUDIA UNIVERSITATIS BABES-BOLYAI CHEMIA, 2014, 59 (01): : 159 - 170
  • [48] Temporary networks in polymer-modified asphalts
    Polacco, G
    Stastna, J
    Vlachovicova, Z
    Biondi, D
    Zanzotto, L
    POLYMER ENGINEERING AND SCIENCE, 2004, 44 (12): : 2185 - 2193
  • [49] From microstructure to macrostructure: an integrated model of structure formation in polymer-modified concrete
    Beeldens, A
    Van Gemert, D
    Schorn, H
    Ohama, Y
    Czarnecki, L
    MATERIALS AND STRUCTURES, 2005, 38 (280) : 601 - 607
  • [50] Polyelectrolyte-modified microemulsions as new templates for the formation of nanoparticles
    Koetz, J
    Bahnemann, J
    Lucas, G
    Tiersch, B
    Kosmella, S
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2004, 250 (1-3) : 423 - 430