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Covering colloids, polymers, surfactant phases, emulsions, and
granular media, Soft and Fragile Matter: Nonequilibrium Dynamics,
Metastability and Flow (PBK) provides self-contained and
pedagogical coverage of the rapidly advancing field of systems
driven out of equilibrium, with a strong emphasis on unifying
conceptual principles rather than material-specific details.
Written by internationally recognized experts, the book contains
introductions at the level of a graduate course in soft condensed
matter and statistical physics to the following areas: experimental
techniques, polymers, rheology, colloids, computer simulation,
surfactants, phase separation kinetics, driven systems, structural
glasses, slow dynamics, and granular materials. These topics lead
to a range of exciting applications at the forefront of current
research, including microplasticity of emulsions, sequence design
of copolymers, branched polymer dynamics, nucleation kinetics in
colloids, multiscale modeling, flow-induced surfactant textures,
fluid demixing under shear, two-time correlation functions, chaotic
sedimentation dynamics, and sound propagation in powders. Balancing
theory, simulation, and experiment, this broadly-based, pedagogical
account of a rapidly developing field is an excellent compendium
for graduate students and researchers in condensed matter physics,
materials science, and physical chemistry.
Covering colloids, polymers, surfactant phases, emulsions, and
granular media, Soft and Fragile Matter: Nonequilibrium Dynamics,
Metastability and Flow (PBK) provides self-contained and
pedagogical coverage of the rapidly advancing field of systems
driven out of equilibrium, with a strong emphasis on unifying
conceptual principles rather than material-specific details.
Written by internationally recognized experts, the book contains
introductions at the level of a graduate course in soft condensed
matter and statistical physics to the following areas: experimental
techniques, polymers, rheology, colloids, computer simulation,
surfactants, phase separation kinetics, driven systems, structural
glasses, slow dynamics, and granular materials. These topics lead
to a range of exciting applications at the forefront of current
research, including microplasticity of emulsions, sequence design
of copolymers, branched polymer dynamics, nucleation kinetics in
colloids, multiscale modeling, flow-induced surfactant textures,
fluid demixing under shear, two-time correlation functions, chaotic
sedimentation dynamics, and sound propagation in powders. Balancing
theory, simulation, and experiment, this broadly-based, pedagogical
account of a rapidly developing field is an excellent compendium
for graduate students and researchers in condensed matter physics,
materials science, and physical chemistry.
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