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January 1, 2001Medical Entomology and Zoology6,459 citations

Understanding Molecular Simulation: From Algorithms to Applications

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DFDaan FrenkelBSBerend Smit

Key Points

  • The aim is to provide a comprehensive understanding of molecular simulation techniques and their applications in materials science.
  • Explains various molecular simulation algorithms and their implementation in pseudocode.
  • Illustrates practical applications through case studies and current developments in simulation methods.
  • Covers advanced techniques such as transition path sampling and dissipative particle dynamics.
  • Describes new developments in simulation methods since the first edition.
  • Highlights practical applications of molecular simulation techniques in materials science.
  • Includes examples and questions to enhance understanding of simulation concepts.

Abstract

Second and revised edition Molecular Simulation: From Algorithms to Applications explains the physics behind the "recipes" of molecular simulation for materials science. Computer simulators are continuously confronted with questions concerning the choice of a particular technique for a given application. A wide variety of tools exist, so the choice of technique requires a good understanding of the basic principles. More importantly, such understanding may greatly improve the efficiency of a simulation program. The implementation of simulation methods is illustrated in pseudocodes and their practical use in the case studies used in the text. the first edition only five years ago, the simulation world has changed significantly -- current techniques have matured and new ones have appeared. This new edition deals with these new developments; in particular, there are sections on: · Transition path sampling and diffusive barrier crossing to simulaterare events · Dissipative particle dynamic as a course-grained simulation technique · Novel schemes to compute the long-ranged forces · Hamiltonian and non-Hamiltonian dynamics in the context constant-temperature and constant-pressure molecular dynamics simulations · Multiple-time step algorithms as an alternative for constraints · Defects in solids · The pruned-enriched Rosenbluth sampling, recoil-growth, and concerted rotations for complex molecules · Parallel tempering for glassy Hamiltonians are included that highlight current applications and the codes of case studies are available on the World Wide Web. Several new examples have been added since the first edition to illustrate recent applications. Questions are included in this new edition. No prior knowledge of computer simulation is assumed.

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Frenkel et al. (2001) studied this question.

synapsesocial.com/papers/6a5d2dc9fb7682ce97c23251https://doi.org/10.1016/b978-0-12-267351-1.x5000-7
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