10.1002/bbpc.19910950208
Crossref journal-article
Wiley
Berichte der Bunsengesellschaft für physikalische Chemie (311)
Abstract

AbstractMixed solutions of the anionic surfactant Sodiumdodecylsulfate (SDS) and the zwitterionic Tetradecyldimethylaminoxid (TDMAO) were studied under shear in a Couette‐type apparatus. For shear rates exceeding a critical shear gradient γc the solutions show birefringence which approaches a constant value ΔnMAX with increasing shear rate. At the same time properties like the shear viscosity and the normal stress difference increase dramatically. A structural modification must thus have taken place for γ > γc: a shear‐induced structure (SIS) has developed. – The structure of the micelles in the solution at rest was determined by SANS‐, electric birefringence‐ and viscosity experiments for different mixing ratios, concentrations and ionic strength. The solutions under shear were studied by SANS, flow‐birefringence and rheological measurements. – At rest small, rodlike micelles which consist of mixed surfactants are present. The length of the micelles are smaller than their mean distance and the viscosity is low in this case. The dimensions of the micelles were determined from the positions of the correlation peaks in the SANS‐patterns which are due to repulsive forces between the charged aggregates. At a mixing ratio of 9:1 (TDMAO:SDS; C = 100 mM) the solutions are viscoelastic and no SIS is detected. The SIS is thus formed only in solutions with surfactant concentrations which are below the overlap concentration. At γc – at which the SIS is beginning to form – the product of γc and τROT, the rotational relaxation time of the rods, is much smaller than one. – As soon as a critical shear gradient is reached these former isotropic micellar solutions show birefringence, an extinction angle of zero degrees, normal stress difference and an increased viscosity. Former isotropic SANS‐patterns deform and peaks show the appearence of a highly ordered structure in equilibrium with unordered micelles. All micelles taking part in the SIS are completely aligned in the direction of flow. Formation of the SIS is highly dependent on concentration, mixing ratio and ionic strength. Finally, two proposals for the nature of SIS are presented: A shear induced phase transition into domains of (pseudo)nematic phases seems most likely to us and is consistent with our experimental results. But also a pearl‐string like array in domains of oriented micelles is conceivable.

Bibliography

Hofmann, S., Rauscher, A., & Hoffmann, H. (1991). Shear Induced Micellar Structures. Berichte Der Bunsengesellschaft Für Physikalische Chemie, 95(2), 153–164. Portico.

Authors 3
  1. S. Hofmann (first)
  2. A. Rauscher (additional)
  3. H. Hoffmann (additional)
References 37 Referenced 78
  1. Surfactant Science Series 1987 22 Surfactant Solutions – New Methods of Investigations
  2. 10.1002/anie.198809021
  3. 10.1007/BF01774397
  4. 10.1007/BF01410471
  5. 10.1007/BFb0116214
  6. 10.1021/j100370a070
  7. C. M.MarquesandM. E.Cates to be published.
  8. 10.1007/BFb0051073
  9. 10.1088/0950-7671/42/12/313
  10. M.Löbl Ph.D.‐Thesis Bayreuth1985.
  11. H.Schlichting “Grenzschicht‐Theorie” p.491 Karlsruhe1965.
  12. 10.1098/rsta.1923.0008
  13. 10.1098/rspa.1923.0013
  14. 10.1098/rspa.1936.0215
  15. {'key': 'e_1_2_1_14_2', 'volume-title': 'The Physics of Rubber Elasticity', 'author': 'Treloar L. R. G.', 'year': '1958'} / The Physics of Rubber Elasticity by Treloar L. R. G. (1958)
  16. 10.1039/tf9565200120
  17. 10.1038/176838a0
  18. 10.1007/BFb0051073
  19. I.Wunderlich Ph.D.‐Thesis Bayreuth1986.
  20. 10.1007/BFb0114478
  21. 10.1107/S0021889876011394
  22. 10.1051/rphysap:01984001909075900
  23. {'key': 'e_1_2_1_21_2', 'first-page': '277', 'volume': '15', 'author': 'Kostorz G.', 'year': '1979', 'journal-title': 'Treatise Mater. Sci. Technol.'} / Treatise Mater. Sci. Technol. by Kostorz G. (1979)
  24. 10.1007/BF01448149
  25. {'key': 'e_1_2_1_23_2', 'first-page': '255', 'volume': '2', 'author': 'Porod G.', 'year': '1948', 'journal-title': 'Acta Phys. Austriaca'} / Acta Phys. Austriaca by Porod G. (1948)
  26. {'key': 'e_1_2_1_24_2', 'volume-title': 'Small Angle Scattering of X‐Rays', 'author': 'Guinier A.', 'year': '1955'} / Small Angle Scattering of X‐Rays by Guinier A. (1955)
  27. {'key': 'e_1_2_1_25_2', 'first-page': '171', 'volume': '3', 'author': 'Hoffmann H.', 'year': '1988', 'journal-title': 'Encycl. Emulsion Technol.'} / Encycl. Emulsion Technol. by Hoffmann H. (1988)
  28. 10.1246/bcsj.45.428
  29. 10.1002/bbpc.19810851014
  30. {'key': 'e_1_2_1_28_2', 'volume-title': 'The Hydrophobic Effect', 'author': 'Tanford C.', 'year': '1973'} / The Hydrophobic Effect by Tanford C. (1973)
  31. 10.1021/j100794a011
  32. 10.1021/j100368a056
  33. 10.1007/BF01333737
  34. 10.1039/f29787400918
  35. 10.1016/0021-9797(81)90397-0
  36. J.Hiemenz “Principles of Colloid and Surface Chemistry” New York1977.
  37. 10.1103/PhysRevLett.62.1856
Dates
Type When
Created 13 years, 1 month ago (July 26, 2012, 10:37 a.m.)
Deposited 1 year, 10 months ago (Oct. 22, 2023, 9:39 p.m.)
Indexed 1 year, 4 months ago (April 26, 2024, 9:44 a.m.)
Issued 34 years, 6 months ago (Feb. 1, 1991)
Published 34 years, 6 months ago (Feb. 1, 1991)
Published Online 15 years, 3 months ago (May 8, 2010)
Published Print 34 years, 6 months ago (Feb. 1, 1991)
Funders 0

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@article{Hofmann_1991, title={Shear Induced Micellar Structures}, volume={95}, ISSN={0005-9021}, url={http://dx.doi.org/10.1002/bbpc.19910950208}, DOI={10.1002/bbpc.19910950208}, number={2}, journal={Berichte der Bunsengesellschaft für physikalische Chemie}, publisher={Wiley}, author={Hofmann, S. and Rauscher, A. and Hoffmann, H.}, year={1991}, month=feb, pages={153–164} }