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115. Piechowiak MA, Videcoq A, Ferrando R, Bochicchio D, Pagnoux C, Rossignol F (2012)
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116. Castelnovo M, Sens P, Joanny JF (2000) Charge distribution on annealed polyelectrolytes.
Eur Phys J E 1:115–125
117. Coslovich D, Hansen J, Kahl G (2011) Ultrasoft primitive model of polyionic solutions:
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118. Coslovich D, Hansen JP, Kahl G (2011) Clustering, conductor-insulator transition and phase
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C0SM01090A
119. Lee J, Popov YO, Fredrickson GH (2008) Complex coacervation: a field theoretic simulation
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120. Ryde ´n J, Ullner M, Linse P (2005) Monte Carlo simulations of oppositely charged macroions
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121. Zito T, Seidela C (2002) Equilibrium charge distribution on annealed polyelectrolytes. Eur
Phys J E 8:339–346
122. Buchhammer HM, Mende M, Oelmann M (2003) Formation of mono-sized polyelectrolyte
complex dispersions: effects of polymer structure, concentration and mixing conditions.
Colloids Surf A 218(1):151–159. doi:10.1016/S0927-7757(02)00582-4
123. Buchhammer HM, Mende M, Oelmann M (2004) Preparation of monodisperse polyelectrolyte complex nanoparticles in dilute aqueous solution. In: Tauer K (ed) Aqueous polymer
dispersions. Progress in colloid and polymer science, vol 124. Springer, Berlin, pp 98–102
124. Dobrynin AV (2008) Theory and simulations of charged polymers: from solution properties
to polymeric nanomaterials. Curr Opin Colloid Interface Sci 13(6):376–388. doi:10.1016/j.
cocis.2008.03.006
125. Oskolkov NN, Potemkin II (2007) Complexation in asymmetric solutions of oppositely
charged polyelectrolytes:phase diagram. Macromolecules 40(23):8423–8429. doi:10.1021/
ma0709304
126. Popov YO, Lee J, Fredrickson G (2007) Field-theoretic simulations of polyelectrolyte
complexation. J Polym Sci Pol Phys 45:3223–3230
127. Dalakoglou G, Karatasos K, Lyulin S, Lyulin A (2008) Brownian dynamics simulations of
complexes of hyperbranched polymers with linear polyelectrolytes: effects of the strength of
electrostatic interactions on static properties. Mat Sci Eng B-Solid 152(1–3):114–118.
doi:10.1016/j.mseb.2008.06.012
128. Skepo M, Linse P (2003) Complexation, phase separation, and redissolution in polyelectrolytemacroion solutions. Macromolecules 36:508–519
129. Feng J, Ruckenstein E (2003) Monte Carlo simulation of polyampholyte-nanoparticle complexation. Polymer 44(10):3141–3150. doi:10.1016/S0032-3861(03)00208-8
130. Ulrich S, Seijo M, Carnal F, Stoll S (2011) Formation of complexes between nanoparticles
and weak polyampholyte chains. Monte Carlo simulations. Macromolecules 44:1661–1670
131. Sennato S, Truzzolillo D, Bordi F, Sciortino F, Cametti C (2009) Colloidal particle
aggregates induced by particle surface charge heterogeneity. Colloids Surf A 343
(1–3):34–42. doi:10.1016/j.colsurfa.2009.01.026
132. Jeon J, Dobrynin AV (2005) Molecular dynamics simulations of polyampholytepolyelectrolyte complexes in solutions. Macromolecules 38:5300–5312
Aggregation of Charged Colloidal Particles
95
simulation. Langmuir 24(7):3001–3008. doi:10.1021/la702104u
114. Cerbelaud M, Videcoq A, Abelard P, Ferrando R (2009) Simulation of the heteroagglomeration between highly size-asymmetric ceramic particles. J Colloid Interface Sci 332
(2):360–365. doi:10.1016/j.jcis.2008.11.063
115. Piechowiak MA, Videcoq A, Ferrando R, Bochicchio D, Pagnoux C, Rossignol F (2012)
Aggregation kinetics and gel formation in modestly concentrated suspensions of oppositely
charged model ceramic colloids: a numerical study. Phys Chem Chem Phys 14:1431–1439.
doi:10.1039/C1CP22980J
116. Castelnovo M, Sens P, Joanny JF (2000) Charge distribution on annealed polyelectrolytes.
Eur Phys J E 1:115–125
117. Coslovich D, Hansen J, Kahl G (2011) Ultrasoft primitive model of polyionic solutions:
structure, aggregation, and dynamics. J Chem Phys 134(24):244514 (15 pages), www.scopus.
com
118. Coslovich D, Hansen JP, Kahl G (2011) Clustering, conductor-insulator transition and phase
separation of an ultrasoft model of electrolytes. Soft Matter 7:1690–1693. doi:10.1039/
C0SM01090A
119. Lee J, Popov YO, Fredrickson GH (2008) Complex coacervation: a field theoretic simulation
study of polyelectrolyte complexation. J Chem Phys 128(22):224908. doi:10.1063/1.2936834
120. Ryde ´n J, Ullner M, Linse P (2005) Monte Carlo simulations of oppositely charged macroions
in solution. J Chem Phys 123(3):034909. doi:10.1063/1.1949191
121. Zito T, Seidela C (2002) Equilibrium charge distribution on annealed polyelectrolytes. Eur
Phys J E 8:339–346
122. Buchhammer HM, Mende M, Oelmann M (2003) Formation of mono-sized polyelectrolyte
complex dispersions: effects of polymer structure, concentration and mixing conditions.
Colloids Surf A 218(1):151–159. doi:10.1016/S0927-7757(02)00582-4
123. Buchhammer HM, Mende M, Oelmann M (2004) Preparation of monodisperse polyelectrolyte complex nanoparticles in dilute aqueous solution. In: Tauer K (ed) Aqueous polymer
dispersions. Progress in colloid and polymer science, vol 124. Springer, Berlin, pp 98–102
124. Dobrynin AV (2008) Theory and simulations of charged polymers: from solution properties
to polymeric nanomaterials. Curr Opin Colloid Interface Sci 13(6):376–388. doi:10.1016/j.
cocis.2008.03.006
125. Oskolkov NN, Potemkin II (2007) Complexation in asymmetric solutions of oppositely
charged polyelectrolytes:phase diagram. Macromolecules 40(23):8423–8429. doi:10.1021/
ma0709304
126. Popov YO, Lee J, Fredrickson G (2007) Field-theoretic simulations of polyelectrolyte
complexation. J Polym Sci Pol Phys 45:3223–3230
127. Dalakoglou G, Karatasos K, Lyulin S, Lyulin A (2008) Brownian dynamics simulations of
complexes of hyperbranched polymers with linear polyelectrolytes: effects of the strength of
electrostatic interactions on static properties. Mat Sci Eng B-Solid 152(1–3):114–118.
doi:10.1016/j.mseb.2008.06.012
128. Skepo M, Linse P (2003) Complexation, phase separation, and redissolution in polyelectrolytemacroion solutions. Macromolecules 36:508–519
129. Feng J, Ruckenstein E (2003) Monte Carlo simulation of polyampholyte-nanoparticle complexation. Polymer 44(10):3141–3150. doi:10.1016/S0032-3861(03)00208-8
130. Ulrich S, Seijo M, Carnal F, Stoll S (2011) Formation of complexes between nanoparticles
and weak polyampholyte chains. Monte Carlo simulations. Macromolecules 44:1661–1670
131. Sennato S, Truzzolillo D, Bordi F, Sciortino F, Cametti C (2009) Colloidal particle
aggregates induced by particle surface charge heterogeneity. Colloids Surf A 343
(1–3):34–42. doi:10.1016/j.colsurfa.2009.01.026
132. Jeon J, Dobrynin AV (2005) Molecular dynamics simulations of polyampholytepolyelectrolyte complexes in solutions. Macromolecules 38:5300–5312
Aggregation of Charged Colloidal Particles
95
