Patterns in Hydrogen Bonding: Functionality and Graph Set Analysis in Crystals
- 18 August 1995
- journal article
- review article
- Published by Wiley in Angewandte Chemie International Edition in English
- Vol. 34 (15) , 1555-1573
- https://doi.org/10.1002/anie.199515551
Abstract
Whereas much of organic chemistry has classically dealt with the preparation and study of the properties of individual molecules, an increasingly significant portion of the activity in chemical research involves understanding and utilizing the nature of the interactions between molecules. Two representative areas of this evolution are supramolecular chemistry and molecular recognition. The interactions between molecules are governed by intermolecular forces whose energetic and geometric properties are much less well understood than those of classical chemical bonds between atoms. Among the strongest of these interactions, however, are hydrogen bonds, whose directional properties are better understood on the local level (that is, for a single hydrogen bond) than many other types of non‐bonded interactions. Nevertheless, the means by which to characterize, understand, and predict the consequences of many hydrogen bonds among molecules, and the resulting formation of molecular aggregates (on the microscopic scale) or crystals (on the macroscopic scale) has remained largely enigmatic. One of the most promising systematic approaches to resolving this enigma was initially developed by the late M. C. Etter, who applied graph theory to recognize, and then utilize, patterns of hydrogen bonding for the understanding and design of molecular crystals. In working with Etter's original ideas the power and potential utility of this approach on one hand, and on the other, the need to develop and extend the initial Etter formalism was generally recognized. It with that latter purpose that we originally undertook the present review.Keywords
This publication has 114 references indexed in Scilit:
- Hydrogen bonding in 2-hydroxy((di)thio)benzoates. I. X-ray structures of 2,6-dimethylpiperidinium saltsJournal of Chemical Crystallography, 1993
- Organic salts ofL-tartaric acid: materials for second harmonic generation with a crystal structure governed by an anionic hydrogen-bonded networkJournal of the Chemical Society, Chemical Communications, 1992
- A solid-state deuterium NMR study of internal rotation in p-nitroanilineJournal of Magnetic Resonance (1969), 1991
- Polyhedral clathrate hydrates of a strong base: Phase relations and crystal structures in the system tetramethylammonium hydroxide-waterJournal of inclusion phenomena and molecular recognition in chemistry, 1990
- Hydrogen-bond formation in nitroanilines: the first step in designing acentric materialsJournal of the American Chemical Society, 1987
- Crystal and molecular structure of an amber polymorph of 4-methyl-2-nitroacetanilide (MNA)Journal of Chemical Crystallography, 1984
- Crystal and molecular structures of two polymorphs of 4-methyl-2-nitroacetanilide (MNA)Journal of Chemical Crystallography, 1983
- Crystal Structure of Tetramethyl-β-oxoglutaric acid. Monoclinic ModificationMacromolecules, 1971
- The Crystal Structure of DL-Alanine. II. Revision of Parameters by Three-Dimensional Fourier Analysis1Journal of the American Chemical Society, 1950
- The Crystal Structure of Rhombohedral AcetamideJournal of the American Chemical Society, 1940