Citation: ZHU Yan, YUAN Guang, YUAN Shuai, CHEN Shaojie, YAO Weiqin, TIAN Longzhao, QIN Fan, LIU Linmei. Influence of Alkali and Salt on Phase Diagram of Sodium Dodecyl Sulfate/n-Pentanol-Cyclohexane-Water Pseudo Ternary Systems[J]. Chinese Journal of Applied Chemistry, ;2017, 34(7): 833-838. doi: 10.11944/j.issn.1000-0518.2017.07.160445 shu

Influence of Alkali and Salt on Phase Diagram of Sodium Dodecyl Sulfate/n-Pentanol-Cyclohexane-Water Pseudo Ternary Systems

  • Corresponding author: ZHU Yan, zhuyan_1963@126.com
  • Received Date: 7 November 2016
    Revised Date: 18 January 2017
    Accepted Date: 22 February 2017

    Fund Project: the National Natural Science Foundation of China 50873081

Figures(7)

  • An important application of psudo ternary phase diagrams is to obtain microemulsion for nano material preparation. Therefore, psudo ternary phase diagrams of sodium dodecyl sulfate(SDS)/n-C5H11OH-cyclohexane-water at 45 ℃ and its conductivity were studied. Pseudo ternary phase diagrams agree well with conductivity measurement. Then psudo ternary phase diagrams of SDS/n-C5H11OH-cyclohexane-water, SDS/n-C5H11OH-cyclohexane-Zn(NO3)2, SDS/n-C5H11OH-cyclohexane-NaOH at 45 ℃ and 65 ℃ were measured and compared. The influence of alkali NaOH and salt Zn(NO3)2 on peudo ternary phase diagrams was discussed. The result shows that oil-in-water(O/W) and water-in-oil(W/O) microemulsion areas are smaller after (Zn(NO3)2) or (NaOH) was added into SDS/n-C5H11OH-cyclohexane-water system. The O/W microemulsion areas disappeared in SDS/n-C5H11OH-cyclohexane-NaOH peudo ternary phase diagrams at 45 ℃. There are still 5 areas in psudo ternary phase diagrams and smaller O/W and W/O microemulsion areas after NaOH or Zn(NO3)2 was added in SDS/cyclohexane-water system at 65 ℃. These study results were applied in the preparation nano ZnO particle in microemulsion system. Tansimission electron microscopy and X-ray diffraction studies show that the sample preparaed by the guidance of psudo ternary phase diagrams is nano ZnO particle.
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