Ionic microgels as model systems for colloids with an ultrasoft electrosteric repulsion:: Structure and thermodynamics -: art. no. 074903

被引:67
作者
Gottwald, D
Likos, CN
Kahl, G
Löwen, H
机构
[1] Vienna Univ Technol, Ctr Computat Mat Sci, A-1040 Vienna, Austria
[2] Vienna Univ Technol, Inst Theoret Phys, A-1040 Vienna, Austria
[3] Univ Dusseldorf, Inst Theoret Phys 2, D-40225 Dusseldorf, Germany
关键词
D O I
10.1063/1.1850451
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
We present a theoretical analysis of the structural properties and phase behavior of spherical, loosely cross-linked ionic microgels that possess a low monomer concentration. The analysis is based on the recently derived effective interaction potential between such particles [A. R. Denton, Phys. Rev. E 67, 011804 (2003)]. By employing standard tools from the theory of the liquid state, we quantitatively analyze the pair correlations in the fluid and find anomalous behavior above the overlap concentration, similar to the cases of star-branched neutral and charged polymers. We also employ an evolutionary algorithm in order to predict the crystalline phases of the system without any a priori assumptions regarding their symmetry class. A very rich phase diagram is obtained, featuring two reentrant melting transitions and a number of unusual crystal structures. At high densities, both the Hansen-Verlet freezing criterion [J.-P. Hansen and L. Verlet, Phys. Rev. 184, 151 (1969)] and the Lindemann melting criterion [F. A. Lindemann, Phys. Z. 11, 609 (1910)] lose their validity. The topology of the phase diagram is altered when the steric interactions between the polymer segments become strong enough, in which case the lower-density reentrant melting disappears and the region of stability of the fluid is split into two disconnected domains, separated by intervening fcc and bcc regions. (C) 2005 American Institute of Physics.
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页数:11
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共 60 条
[1]   MICROGELS - MODEL POLYMERS FOR THE CROSS-LINKED STATE [J].
ANTONIETTI, M ;
BREMSER, W ;
SCHMIDT, M .
MACROMOLECULES, 1990, 23 (16) :3796-3805
[2]  
Ashcroft N. W., 1976, SOLID STATE PHYS
[3]   Prediction of the interaction potential of microgel particles from rheometric data. Comparison with different models [J].
Berli, CLA ;
Quemada, D .
LANGMUIR, 2000, 16 (26) :10509-10514
[4]   Dually responsive microgels from polyether-modified poly(acrylic acid): Swelling and drug loading [J].
Bromberg, L ;
Temchenko, M ;
Hatton, TA .
LANGMUIR, 2002, 18 (12) :4944-4952
[5]   Counterion penetration and effective electrostatic interactions in solutions of polyelectrolyte stars and microgels (vol 67, art no. 011804, 2003) [J].
Denton, AR .
PHYSICAL REVIEW E, 2003, 68 (04)
[6]   Counterion penetration and effective electrostatic interactions in solutions of polyelectrolyte stars and microgels [J].
Denton, AR .
PHYSICAL REVIEW E, 2003, 67 (01) :10
[7]   Preparation and properties of starch-based colloidal microgels [J].
Dziechciarek, Y ;
van Soest, JJG ;
Philipse, AP .
JOURNAL OF COLLOID AND INTERFACE SCIENCE, 2002, 246 (01) :48-59
[8]   Re-entrant glass transition in a colloid-polymer mixture with depletion attractions [J].
Eckert, T ;
Bartsch, E .
PHYSICAL REVIEW LETTERS, 2002, 89 (12)
[9]   Investigation of the swelling response and loading of ionic microgels with drugs and proteins: The dependence on cross-link density [J].
Eichenbaum, GM ;
Kiser, PF ;
Dobrynin, AV ;
Simon, SA ;
Needham, D .
MACROMOLECULES, 1999, 32 (15) :4867-4878
[10]   Molecular simulation of polymeric networks and gels: phase behavior and swelling [J].
Escobedo, FA ;
de Pablo, JJ .
PHYSICS REPORTS-REVIEW SECTION OF PHYSICS LETTERS, 1999, 318 (03) :86-112