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Open AccessJournal ArticleDOI

Crystallization kinetics of colloidal model suspensions: recent achievements and new perspectives

TLDR
The present review attempts to cover the interesting developments that have occurred since the turn of the millennium and to identify important novel trends, with particular focus on experimental aspects.
Abstract
Colloidal model systems allow studying crystallization kinetics under fairly ideal conditions with rather well characterized pair interactions and minimized external influences. In complementary approaches therefore experiment, analytic theory and simulation have been employed to study colloidal solidification in great detail. These studies were based on advanced optical methods, careful system characterization and sophisticated numerical methods. Both the effects of the type, strength and range of the pair-interaction between the colloidal particles and those of the colloid-specific polydispersity were addressed in a quantitative way. Key parameters of crystallization were derived and compared to those of metal systems. These systematic investigations significantly contributed to an enhanced understanding of the crystallization processes in general. Further, new fundamental questions have arisen and (partially) been solved over the last decade including e.g. a two step nucleation mechanism in homogeneous nucleation, choice of the crystallization pathway or the subtle interplay of boundary conditions in heterogeneous nucleation. On the other side, via the application of both gradients and external fields the competition between different nucleation and growth modes can be controlled and the resulting micro-structure be influenced. The present review attempts an account of the interesting developments occurred since the turn of the millennium and an identification of important novel trends with particular focus on experimental aspects.

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Crystal Nucleation in Liquids: Open Questions and Future Challenges in Molecular Dynamics Simulations.

TL;DR: In this paper, a review of the numerous molecular dynamics simulations that have unraveled crucial aspects of crystal nucleation in liquids is presented, placing the theoretical framework of classical nucleation theory and the state-of-the-art computational methods by reviewing simulations of such processes as ice nucleation and the crystallization of molecules in solutions.
Journal ArticleDOI

Charge Regulation in the Electrical Double Layer: Ion Adsorption and Surface Interactions

TL;DR: For the interpretation of interaction energy profiles, the present article advocates the use of the constant regulation approximation, which summarizes the surface properties in terms of two quantities, namely, the diffuse layer potential and the regulation parameter.
Journal ArticleDOI

Crystal Nucleation in Liquids: Open Questions and Future Challenges in Molecular Dynamics Simulations

TL;DR: It is believed that, by improving existing interatomic potentials and currently available enhanced sampling methods, the community can move toward accurate investigations of realistic systems of practical interest, thus bringing simulations a step closer to experiments.
Journal ArticleDOI

Assembly and phase transitions of colloidal crystals

TL;DR: In this article, the authors describe recent progress in the study of colloidal crystals composed of tunable isotropic spheres, anisotropic particles, and active particles, focusing on advances in crystallization, melting and solid-solid transitions.
Journal ArticleDOI

The Tough Journey of Polymer Crystallization: Battling with Chain Flexibility and Connectivity

TL;DR: Theoretical approaches addressing the mechanism of polymer crystallization remain the great challenge in polymer science as discussed by the authors, and many different models/theories have been proposed, or even conflicting.
References
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Journal ArticleDOI

Kinetics of Phase Change. I General Theory

TL;DR: In this paper, the theory of phase change is developed with the experimentally supported assumptions that the new phase is nucleated by germ nuclei which already exist in the old phase, and whose number can be altered by previous treatment.
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Kinetics of Phase Change. II Transformation‐Time Relations for Random Distribution of Nuclei

TL;DR: In this article, a relation between the actual transformed volume V and a related extended volume V1 ex is derived upon statistical considerations, and a rough approximation to this relation is shown to lead, under the proper conditions, to the empirical formula of Austin and Rickett.
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Granulation, Phase Change, and Microstructure Kinetics of Phase Change. III

TL;DR: In this paper, a comprehensive description of the phenomena of phase change may be summarized in Phase Change, Grain Number and Microstructure Formulas or Diagrams, giving, respectively, the transformed volume, grain, and microstructure densities as a function of time, temperature, and other variables.
Journal ArticleDOI

Equation of State for Nonattracting Rigid Spheres

TL;DR: In this paper, a new equation of state for rigid spheres has been developed from an analysis of the reduced virial series, which possesses superior ability to describe rigid-sphere behavior compared with existing equations.
Journal ArticleDOI

Role of Repulsive Forces in Determining the Equilibrium Structure of Simple Liquids

TL;DR: In this paper, the Fourier transform of the pair correlation function is used to calculate the structure factor of a reference system in which the intermolecular forces are entirely repulsive and identical to the repulsive forces in a Lennard-Jones fluid.
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