The discovery of the Nanotube in 1991 by electron microscopy ha ushered in the era of Nanoscience. The atomic-resolution electron microscope has been a crucial tool in this effort. This book gives the basic theoretical background needed to understand how electron microscopes allow us to see atoms, t
Electron Diffraction and High-Resolution Electron Microscopy of Mineral Structures
β Scribed by Professor Dr. Victor A. Drits (auth.)
- Publisher
- Springer-Verlag Berlin Heidelberg
- Year
- 1987
- Tongue
- English
- Leaves
- 314
- Edition
- 1
- Category
- Library
No coin nor oath required. For personal study only.
β¦ Synopsis
The decision of Springer-Verlag to publish this book in English came as a pleasant surprise. The fact is that I started writing the first version of the book back in 1978. I wished to attract attention to potentialities inherent in selected-area electron diffraction (SAED) which, for various reasons, were not being put to use. By that time, I had at my disposal certain structural data on natural and synthetic minerals obtained using SAED and high-resolution electron microscopy (HREM), and this stimulated my writing this book. There were several aspects concerning these data that I wished to emphasize. First, it was mostly new and understudied minerals that possess the peculiar structural features studied by SAED and HREM. This could interest mineralogists, crystalloΒ chemists, and crystallographers. Second, the results obtained indiΒ cated that, under certain conditions, SAED could be an effective, and sometimes the only possible, method for structure analysis of minerals. This inference was of primary importance, since fine dispersion and poor crystallinity of numerous natural and syntheΒ tic minerals makes their structure study by conventional diffracΒ tion methods hardly possible. Third, it was demonstrated that in many cases X-ray powder diffraction analysis of dispersed minerΒ als ought to be combined with SAED and local energy dispersion analysis. This was important, since researchers in structural minΒ eralogy quite often ignored, and still ignore even the simplest inΒ formation which is readily available from geometrical analysis of SAED patterns obtained from microcrystals.
β¦ Table of Contents
Front Matter....Pages I-XII
Introduction....Pages 1-3
Geometrical Features of the Crystal and the Reciprocal Lattices....Pages 4-13
The Kinematical Theory of Scattering of Electrons by Crystals. Intensity of Diffraction Reflections....Pages 14-42
Geometrical Analysis of Point Electron-Diffraction Patterns....Pages 43-54
Diffraction Methods in Structure Analysis....Pages 55-69
Dynamical Theory of Electron Diffraction (Two-Beam Approximation)....Pages 70-84
Dynamical n -Beam Scattering of Electrons....Pages 85-101
Electron Diffraction and High-Resolution Electron Microscopy....Pages 102-148
Oblique-Texture Electron Diffraction....Pages 149-176
SAED and HREM Study of Mixed-Layer Minerals....Pages 177-216
SAED and HREM Study of Order/Disorder and Structural Heterogeneity in Layer Minerals....Pages 217-238
Chain Silicates. New Structural Types: Multiple-Chain and Mixed-Chain Minerals....Pages 239-284
Back Matter....Pages 285-304
β¦ Subjects
Mineralogy; Crystallography; Inorganic Chemistry
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