Literature DB >> 35024721

Where in the world are condensed counterions?

Qishun Tang1, Michael Rubinstein2,3.   

Abstract

A scaling model of the concentration profiles of both condensed and free counterions is presented for solutions of spherical and cylindrical charged nanoparticles of different charge valences, nanoparticle sizes, and salt concentrations. The distribution of counterions for both spherical and cylindrical charged particles in salt-free solutions is determined by the condensation parameter γ0 defined as the ratio of nanoparticle valence Z0 to the number of Bjerrum lengths lB = e2/(εkT) per nanoparticle size (γ0 = Z0lB/(2r0) for spherical nanoparticles with radii r0 or γ0 = Z0lB/L for cylindrical particles with length L), where ε is solution dielectric permittivity, e is elementary charge and kT is thermal energy. Depending on the magnitudes of the condensation parameter γ0 and nanoparticle volume fraction ϕ, we find three qualitatively different regimes for the counterion distribution near charged particles: (i) weakly charged particles with no condensed counterions, (ii) regime of weak counterion condensation with less than half of the counterions condensed, and (iii) regime of strong counterion condensation with the majority of counterions condensed. The magnitude of electrostatic energy of a condensed counterion with respect to solution locations with zero electric field is larger than thermal energy kT, and the fraction of condensed counterions increases from less than half in the weak condensation regime to the majority of all counterions in the strong condensation regime. The condensed counterions are not bound to the nanoparticle surface but instead are localized within the condensed counterion zone near the charged particle. The thickness of the condensed counterion zone varies with the condensation parameter γ0, the nanoparticle shape and volume fraction ϕ, and the salt concentration and can be as narrow as Bjerrum length (∼nm) or as large as the particle size (∼L the length of charged cylinder).

Entities:  

Year:  2022        PMID: 35024721      PMCID: PMC8965743          DOI: 10.1039/d1sm01494c

Source DB:  PubMed          Journal:  Soft Matter        ISSN: 1744-683X            Impact factor:   3.679


  8 in total

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Authors:  A Deshkovski; S Obukhov; M Rubinstein
Journal:  Phys Rev Lett       Date:  2001-03-12       Impact factor: 9.161

2.  The primary electroviscous effect in colloidal suspensions.

Authors:  F J Rubio-Hernández; F Carrique; E Ruiz-Reina
Journal:  Adv Colloid Interface Sci       Date:  2004-01-30       Impact factor: 12.984

3.  The Potential of an Infinite Rod-Like Molecule and the Distribution of the Counter Ions.

Authors:  R M Fuoss; A Katchalsky; S Lifson
Journal:  Proc Natl Acad Sci U S A       Date:  1951-09       Impact factor: 11.205

4.  Dynamic electrophoretic mobility of spherical colloidal particles in salt-free concentrated suspensions.

Authors:  Félix Carrique; Emilio Ruiz-Reina; Francisco J Arroyo; María L Jiménez; Angel V Delgado
Journal:  Langmuir       Date:  2008-01-30       Impact factor: 3.882

5.  Charge regulating macro-ions in salt solutions: screening properties and electrostatic interactions.

Authors:  Yael Avni; Tomer Markovich; Rudolf Podgornik; David Andelman
Journal:  Soft Matter       Date:  2018-07-25       Impact factor: 3.679

6.  Counterion condensation on spheres in the salt-free limit.

Authors:  David A J Gillespie; James E Hallett; Oluwapemi Elujoba; Anis Fazila Che Hamzah; Robert M Richardson; Paul Bartlett
Journal:  Soft Matter       Date:  2014-01-28       Impact factor: 3.679

7.  Counter-ion condensation and system dimensionality.

Authors:  B H Zimm; M Le Bret
Journal:  J Biomol Struct Dyn       Date:  1983-10

8.  Role of counterion association in colloidal stability.

Authors:  Lyonel Ehrl; Zichen Jia; Hua Wu; Marco Lattuada; Miroslav Soos; Massimo Morbidelli
Journal:  Langmuir       Date:  2009-03-03       Impact factor: 3.882

  8 in total

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