Structural studies of membranes and surface layers up to 1,000 Å thick using X-ray standing waves
- 1 December 1991
- journal article
- Published by Springer Nature in Nature
- Vol. 354 (6352) , 377-380
- https://doi.org/10.1038/354377a0
Abstract
The X-ray standing wave (XSW) method, developed in the 1960s, was used originally to determine heavy atom positions in and on silicon and germanium single crystals. An X-ray standing wave generated by the interference of coherent incident and reflected beams excites X-ray fluorescence from the heavy atom, the intensity of which as a function of incident angle provides an indication of the atom's distance from the X-ray reflecting surface. The availability of X-ray mirrors and the ability to prepare layered synthetic microstructures has made possible the study of biologically relevant structures using the XSW technique on length scales of typically tens to hundreds of ångströms, allowing heavy atoms in such structures to be located with ångström or subångström resolution. Many model biological systems (such as Langmuir-Blodgett films, which mimic membranes) require access to still larger scales, but it is not obvious that an XSW will remain coherent over such length scales. Here we report studies of a lipid multilayer system using the XSW method, in which we have been able to locate the metal atoms in a zinc arachidate bilayer with ångström resolution at a distance of almost 1,000 A above the surface of a gold mirror. Our results indicate that the XSW technique should be useful for structural studies of supramolecular aggregates, receptor-ligand interactions and multi-membrane stacks, in which length scales of this order are encountered.Keywords
This publication has 17 references indexed in Scilit:
- Diffuse-Double Layer at a Membrane-Aqueous Interface Measured with X-Ray Standing WavesScience, 1990
- X-ray standing waves at a reflecting mirror surfacePhysical Review Letters, 1989
- X-Ray Standing Waves: A Molecular Yardstick for Biological MembranesScience, 1988
- Determination of the position and vibrational amplitude of an adsorbate by means of multiple-order x-ray standing-wave measurementsPhysical Review B, 1985
- Solution to the Surface Registration Problem Using X-Ray Standing WavesPhysical Review Letters, 1982
- X-Ray Standing Waves at Crystal SurfacesPhysical Review Letters, 1980
- New Applications of X-Ray Standing-Wave Fields to Solid State PhysicsPhysical Review Letters, 1976
- Observation of internal x-ray wave fields during Bragg diffraction with an application to impurity lattice locationPhysical Review B, 1974
- Detection of Foreign Atom Sites by Their X-Ray Fluorescence ScatteringPhysical Review Letters, 1969
- Effect of Dynamical Diffraction in X-Ray Fluorescence ScatteringPhysical Review B, 1964