Hydrodynamic and Colloidal Interactions in Concentrated Charge-Stabilized Polymer Dispersions.
暂无分享,去创建一个
Wagner | J. Bergenholtz | F. M. Horn | Horn | Richtering | Bergenholtz | Willenbacher | Norman J. Wagner | Norbert Willenbacher | Walter Richtering
[1] Segrè,et al. Short-time Brownian motion in colloidal suspensions: Experiment and simulation. , 1995, Physical review. E, Statistical physics, plasmas, fluids, and related interdisciplinary topics.
[2] Robert Lionberger,et al. High frequency modulus of hard sphere colloids , 1994 .
[3] J. W. Goodwin,et al. Viscoelastic properties of concentrated latices. Part 1.—Methods of examination , 1982 .
[4] Lee R. White,et al. Electrophoretic mobility of a spherical colloidal particle , 1978 .
[5] P. Pusey,et al. Concentration dependence of the low-shear viscosity of suspensions of hard-sphere colloids , 1997 .
[6] C. Beenakker. The effective viscosity of a concentrated suspension of spheres (and its relation to diffusion) , 1984 .
[7] R. Pecora. Dynamic Light Scattering , 1985 .
[8] G. Batchelor,et al. Brownian diffusion of particles with hydrodynamic interaction , 1976, Journal of Fluid Mechanics.
[9] N. Wagner,et al. Colloidal Charge Determination in Concentrated Liquid Dispersions Using Torsional Resonance Oscillation , 1998 .
[10] J. Brady,et al. Shear-induced structure in colloidal suspensions: I. Numerical simulation , 1988 .
[11] J. W. Goodwin,et al. Properties of concentrated colloidal dispersions , 1991 .
[12] R. Buscall,et al. Maximum density for flow of dispersions of near monodisperse spherical particles , 1994 .
[13] Jonathan W. Bender,et al. Reversible shear thickening in monodisperse and bidisperse colloidal dispersions , 1996 .
[14] R. Zwanzig,et al. High‐Frequency Elastic Moduli of Simple Fluids , 1965 .
[15] D. S. Pearson,et al. Viscoelastic behavior of concentrated spherical suspensions , 1994 .
[16] I. Kolthoff,et al. The Chemistry of Persulfate. I. The Kinetics and Mechanism of the Decomposition of the Persulfate Ion in Aqueous Medium1 , 1951 .
[17] D. Quemada,et al. Rheology of concentrated disperse systems and minimum energy dissipation principle , 1977 .
[18] D. Horn,et al. Diffusion in concentrated dispersions: a study with fiber-optic quasi-elastic light scattering (FOQELS) , 1991 .
[19] Hartmut Löwen,et al. Optimal Effective Pair Potential for Charged Colloids , 1993 .
[20] C. Zukoski,et al. Experimental studies on the rheology of hard-sphere suspensions near the glass transition , 1990 .
[21] J. Brady,et al. Stokesian Dynamics simulation of Brownian suspensions , 1996, Journal of Fluid Mechanics.
[22] B. U. Felderhof,et al. Short‐time diffusion coefficients and high frequency viscosity of dilute suspensions of spherical Brownian particles , 1988 .
[23] H. N. Stein,et al. Electrophoretic Properties of Monodisperse Polystyrene Particles , 1996 .
[24] P. Chaikin,et al. BCC-FCC, melting and reentrant transitions in colloidal crystals , 1982 .
[25] G. Batchelor,et al. The determination of the bulk stress in a suspension of spherical particles to order c2 , 1972, Journal of Fluid Mechanics.
[26] K. E. Starling,et al. Equation of State for Nonattracting Rigid Spheres , 1969 .
[27] Müller,et al. Scaling of transient hydrodynamic interactions in concentrated suspensions. , 1992, Physical review letters.
[28] R. Chow,et al. Effects of surface roughness (hairiness) of latex particles on their electrokinetic potentials , 1988 .
[29] W. Russel,et al. A Smoluchowski theory with simple approximations for hydrodynamic interactions in concentrated dispersions , 1997 .
[30] A. J. Reuvers,et al. Frequency dependent linear viscoelastic properties of ordered polystyrene latices , 1984 .
[31] P. Chaikin,et al. Charge renormalization, osmotic pressure, and bulk modulus of colloidal crystals: Theory , 1984 .
[32] John F. Brady,et al. Microstructure of strongly sheared suspensions and its impact on rheology and diffusion , 1997, Journal of Fluid Mechanics.
[33] M. Anderson,et al. Influence of Solvent on the Electrophoretic Mobility of Polystyrene Latex , 1993 .
[34] J. W. Goodwin,et al. Viscoelastic properties of concentrated latices. Part 2.—Theoretical analysis , 1982 .
[35] C. W. J. Beenakker,et al. Diffusion of spheres in a concentrated suspension II , 1984 .
[36] de Kruif CG,et al. Linear viscoelastic behavior of dense hard-sphere dispersions. , 1989, Physical review. A, General physics.
[37] A. Watillon,et al. Characterization of surface charge on polystyrene latices , 1975 .
[38] John F. Brady,et al. Self-diffusion in sheared suspensions by dynamic simulation , 1999, Journal of Fluid Mechanics.
[39] G. Nägele,et al. On the dynamics and structure of charge-stabilized suspensions , 1996 .
[40] Phan,et al. Phase transition, equation of state, and limiting shear viscosities of hard sphere dispersions. , 1996, Physical review. E, Statistical physics, plasmas, fluids, and related interdisciplinary topics.
[41] S. Fujime,et al. [Dynamic light-scattering]. , 1985, Tanpakushitsu kakusan koso. Protein, nucleic acid, enzyme.
[42] N. Wagner,et al. The rheology and microstructure of charged colloidal suspensions , 1991 .
[43] N. Wagner. The High-Frequency Shear Modulus of Colloidal Suspensions and the Effects of Hydrodynamic Interactions , 1993 .
[44] J. Brady. The rheological behavior of concentrated colloidal dispersions , 1993 .
[45] Dennis E. Koppel,et al. Analysis of Macromolecular Polydispersity in Intensity Correlation Spectroscopy: The Method of Cumulants , 1972 .
[46] J. Brady,et al. Hydrodynamic transport properties of hard-sphere dispersions. I. Suspensions of freely mobile particles , 1988 .
[47] Anthony J. C. Ladd,et al. Hydrodynamic transport coefficients of random dispersions of hard spheres , 1990 .
[48] J. Bergenholtz,et al. Rheology and Dynamics of Colloidal Suspensions , 1999 .
[49] N. Wagner,et al. Relationship between short-time self-diffusion and high-frequency viscosity in charge-stabilized dispersions , 1998 .
[50] P. Mazur,et al. Self-diffusion of spheres in a concentrated suspension , 1983 .
[51] R. Buscall. An effective hard-sphere model of the non-Newtonian viscosity of stable colloidal dispersions: Comparison with further data for sterically stabilised latices and with data for microgel particles , 1994 .
[52] M. Antonietti,et al. Examination of the atypical electrophoretic mobility behavior of charged colloids in the low salt region using the O’Brian-White theory , 1997 .
[53] D. Weitz,et al. Tracer microrheology in complex fluids , 1998 .
[54] D. Horn,et al. Fiber-Optic Quasielastic Light Scattering in Concentrated Latex Dispersions: The Performance of Single-Mode vs. Multimode Fibers , 1992 .
[55] G. Maret,et al. A comparison between the long-time self-diffusion and low shear viscosity of concentrated dispersions of charged colloidal silica spheres , 1994 .
[56] Poon,et al. Viscosity and structural relaxation in suspensions of hard-sphere colloids. , 1995, Physical review letters.
[57] D. C. Henry. The cataphoresis of suspended particles. Part I.—The equation of cataphoresis , 1931 .
[58] W. Frith,et al. Dynamic mechanical-properties of polymerically stabilized dispersions , 1990 .
[59] R. Buscall. Effect of long-range repulsive forces on the viscosity of concentrated latices: comparison of experimental data with an effective hard-sphere model , 1991 .
[60] D. Horn,et al. Single-mode fibers in fiber-optic quasielastic light scattering: A study of the dynamics of concentrated latex dispersions , 1991 .