Motion and Disorder in Crystal Structure Analysis: Measuring and Distinguishing Them
- 1 October 2000
- journal article
- Published by Annual Reviews in Annual Review of Physical Chemistry
- Vol. 51 (1) , 275-296
- https://doi.org/10.1146/annurev.physchem.51.1.275
Abstract
Dynamic processes in crystalline solids are reflected in the atomic displacement amplitudes determined, together with the atomic coordinates, by crystal structure analysis. The interpretation of such amplitudes poses two severe problems: (a) The relative phases of the atomic displacements are lost; and (b) the amplitudes may reflect disorder in the structure and systematic error in the diffraction experiment in addition to motion, but the three contributions cannot be separated on the basis of measurements at a single temperature. Several approximate ways to solve these problems, e.g. rigid-body and segmented-rigid-body analysis, are reviewed together with their limitations. A more recent approach that represents a significant advance with respect to both difficulties is also described: Crystal structures are determined over a range of temperatures; the mean square amplitude quantities are interpreted by taking explicit account of their temperature dependence, i.e. by exploiting the difference in behavior of a microscopic oscillator in the low-temperature, quantum regime and in the high-temperature, classical regime. A distinction between low-frequency and high-frequency motion, disorder, and systematic error becomes possible with this model; this is illustrated with the help of case studies.Keywords
This publication has 51 references indexed in Scilit:
- Motion in crystals: the molecular mean field modelActa crystallographica Section B, Structural science, crystal engineering and materials, 1995
- PEANUT: Computer graphics program to represent atomic displacement parametersJournal of Molecular Graphics, 1990
- Atomic Motions in Molecular Crystals from Diffraction MeasurementsAngewandte Chemie International Edition in English, 1988
- Rotation barriers in crystals from atomic displacement parametersMolecular Physics, 1987
- Dynamic processes in crystals examined through difference vibrational parameters ΔU: the low-spin–high-spin transition in tris(dithiocarbamato)iron(III) complexesActa crystallographica Section B, Structural science, crystal engineering and materials, 1984
- Static and dynamic Jahn-Teller distortions in CuN6 complexes. Crystal structures and EPR spectra of complexes between copper(II) and rigid, tridentate cis,cis-1,3,5-triaminocyclohexane (tach: Cu(tach)2(ClO4)2, Cu(tach)2(NO3)2. Crystal structure of Ni(tach)2(NO3)2Inorganic Chemistry, 1979
- A test for rigid-body vibrations based on a generalization of Hirshfeld's `rigid-bond' postulateActa Crystallographica Section A, 1978
- On the rigid-body motion of molecules in crystalsActa Crystallographica Section B: Structural Science, Crystal Engineering and Materials, 1968
- The effect of thermal motion on the estimation of bond lengths from diffraction measurementsActa Crystallographica, 1964
- Zur Theorie des Austauschproblems und der Remanenzerscheinung der FerromagnetikaThe European Physical Journal A, 1932