
As an Amazon Associate and affiliate partner, Menrva Books earns from qualifying purchases. Learn more
The theory of intermolecular forces has advanced very greatly in recent years. It has become possible to carry out accurate calculations of intermolecular forces for molecules of useful size, and to apply the results to important practical applications such as understanding protein structure and function, and predicting the structures of molecular crystals. The Theory of Intermolecular Forces sets out the mathematical techniques that are needed to describe and calculate intermolecular interactions and to handle the more elaborate mathematical models. It describes the methods that are used to calculate them, including recent developments in the use of density functional theory and symmetry-adapted perturbation theory. The use of higher-rank multipole moments to describe electrostatic interactions is explained in both Cartesian and spherical tensor formalism, and methods that avoid the multipole expansion are also discussed. Modern ab initio perturbation theory methods for the calculation of intermolecular interactions are discussed in detail, and methods for calculating properties of molecular clusters and condensed matter for comparison with experiment are surveyed.
This text investigates the mathematical and physical frameworks required to accurately calculate and describe intermolecular forces in molecular systems. Anthony Stone, a recognized authority in theoretical chemistry, synthesizes complex computational methods to bridge the gap between fundamental quantum theory and practical applications in molecular modeling. The book provides a rigorous examination of how these forces influence protein structure, function, and the arrangement of molecular crystals, utilizing both established and emerging computational techniques.
What You Will Find
Experts identify this work as a foundational text for researchers and graduate students specializing in theoretical chemistry and molecular physics. Readers frequently note the high level of mathematical rigor and the comprehensive coverage of modern ab initio perturbation methods.
Page Count:
352
Publication Date:
2013-04-05
Publisher:
Oxford University Press
ISBN-10:
0199672393
ISBN-13:
9780199672394
No comments yet. Be the first to share your thoughts!