volume 26 issue 2 pages 736-742

Electrokinetic Potential of Nanoparticles in Reverse AOT Micelles: Photometric Determination and Role in the Processes of Heterocoagulation, Separation, and Concentration

Publication typeJournal Article
Publication date2009-12-01
scimago Q1
wos Q2
SJR0.763
CiteScore6.0
Impact factor3.9
ISSN07437463, 15205827
PubMed ID:  19950951
Spectroscopy
Electrochemistry
Condensed Matter Physics
General Materials Science
Surfaces and Interfaces
Abstract
A simple photometric method for determining the electrophoretic mobility of nano- and microparticles in reverse micelles and in solvents with a low dielectric permittivity (2-5) has been developed. The method is based on the use of a thermostatically controlled diaphragm-based optical cell (length 2 cm) with three vertical plane-parallel electrodes (2 x 3 cm; interelectrode gap, 0.3 cm) placed into a standard photocolorimeter. When an electrostatic field (100-600 V) is applied, the particles begin to move away from the electrode of the same polarity. The path traveled by the particles for a given time (2-30 s) is calculated from the change in the optical density of the solution in the near-electrode zone. The electrophoretic potential of nanoparticles in the model systems, calculated from the values of electrophoretic mobility by Huckel-Onsager theory, varied from 70 (Ag nanoparticles in AOT micelles in decane) to -73 mV (aggregated SiO(2) nanoparticles in a decane-chloroform mixture). Calculations by the classical Deryaguin-Landau-Verwey-Overbeek (DLVO) theory determined the contribution of the electrostatic interaction to the stability of the studied systems. We have shown that the surface charge of nanoparticles permits: (1) an electrophoretic concentration of the charged nanoparticles (Ag) with an enrichment factor of up to 10(4), (2) the separation of nanoparticles with zero (C(60)) and a high (Ag) electrokinetic potentials, and (3) the formation of electrostatically bound aggregates (Ag-SiO(2)) through the heterocoagulation of oppositely charged particles.
Found 
Found 

Top-30

Journals

1
2
3
4
5
6
7
8
Colloid Journal
8 publications, 17.78%
Russian Journal of Physical Chemistry A
7 publications, 15.56%
Colloids and Surfaces A: Physicochemical and Engineering Aspects
6 publications, 13.33%
Russian Journal of Inorganic Chemistry
4 publications, 8.89%
Journal of Structural Chemistry
4 publications, 8.89%
Electrophoresis
2 publications, 4.44%
Langmuir
2 publications, 4.44%
Журнал физической химии
1 publication, 2.22%
Analytical and Bioanalytical Chemistry
1 publication, 2.22%
Gold Bulletin
1 publication, 2.22%
Microchimica Acta
1 publication, 2.22%
Journal of Molecular Liquids
1 publication, 2.22%
Journal of Chromatography A
1 publication, 2.22%
International Journal of Heat and Mass Transfer
1 publication, 2.22%
Physical Chemistry Chemical Physics
1 publication, 2.22%
Journal of Optical Technology (A Translation of Opticheskii Zhurnal)
1 publication, 2.22%
Advances in Materials Science and Engineering
1 publication, 2.22%
Advanced Materials Research
1 publication, 2.22%
Коллоидный журнал
1 publication, 2.22%
1
2
3
4
5
6
7
8

Publishers

5
10
15
20
25
Pleiades Publishing
23 publications, 51.11%
Elsevier
9 publications, 20%
Springer Nature
3 publications, 6.67%
Wiley
2 publications, 4.44%
American Chemical Society (ACS)
2 publications, 4.44%
Akademizdatcenter Nauka
1 publication, 2.22%
Royal Society of Chemistry (RSC)
1 publication, 2.22%
Optica Publishing Group
1 publication, 2.22%
Hindawi Limited
1 publication, 2.22%
Trans Tech Publications
1 publication, 2.22%
The Russian Academy of Sciences
1 publication, 2.22%
5
10
15
20
25
  • We do not take into account publications without a DOI.
  • Statistics recalculated weekly.

Are you a researcher?

Create a profile to get free access to personal recommendations for colleagues and new articles.
Metrics
45
Share
Cite this
GOST |
Cite this
GOST Copy
Bulavchenko A. I., Popovetsky P. S. Electrokinetic Potential of Nanoparticles in Reverse AOT Micelles: Photometric Determination and Role in the Processes of Heterocoagulation, Separation, and Concentration // Langmuir. 2009. Vol. 26. No. 2. pp. 736-742.
GOST all authors (up to 50) Copy
Bulavchenko A. I., Popovetsky P. S. Electrokinetic Potential of Nanoparticles in Reverse AOT Micelles: Photometric Determination and Role in the Processes of Heterocoagulation, Separation, and Concentration // Langmuir. 2009. Vol. 26. No. 2. pp. 736-742.
RIS |
Cite this
RIS Copy
TY - JOUR
DO - 10.1021/la903583r
UR - https://doi.org/10.1021/la903583r
TI - Electrokinetic Potential of Nanoparticles in Reverse AOT Micelles: Photometric Determination and Role in the Processes of Heterocoagulation, Separation, and Concentration
T2 - Langmuir
AU - Bulavchenko, Alexander I
AU - Popovetsky, Pavel S
PY - 2009
DA - 2009/12/01
PB - American Chemical Society (ACS)
SP - 736-742
IS - 2
VL - 26
PMID - 19950951
SN - 0743-7463
SN - 1520-5827
ER -
BibTex |
Cite this
BibTex (up to 50 authors) Copy
@article{2009_Bulavchenko,
author = {Alexander I Bulavchenko and Pavel S Popovetsky},
title = {Electrokinetic Potential of Nanoparticles in Reverse AOT Micelles: Photometric Determination and Role in the Processes of Heterocoagulation, Separation, and Concentration},
journal = {Langmuir},
year = {2009},
volume = {26},
publisher = {American Chemical Society (ACS)},
month = {dec},
url = {https://doi.org/10.1021/la903583r},
number = {2},
pages = {736--742},
doi = {10.1021/la903583r}
}
MLA
Cite this
MLA Copy
Bulavchenko, Alexander I., and Pavel S Popovetsky. “Electrokinetic Potential of Nanoparticles in Reverse AOT Micelles: Photometric Determination and Role in the Processes of Heterocoagulation, Separation, and Concentration.” Langmuir, vol. 26, no. 2, Dec. 2009, pp. 736-742. https://doi.org/10.1021/la903583r.