Scinovex
articleTop 1% cited

X-ray and neutron scattering from rough surfaces

Physical review. B, Condensed matter · 1988 · Vol. 38(4) · pp. 2297–2311
S. K. SinhaE. B. SirotaStephen GaroffH. B. Stanley

Abstract

The scattering of x rays and neutrons from rough surfaces is calculated. It is split into specular reflection and diffuse scattering terms. These are calculated in the first Born approximation, and explicit expressions are given for surfaces whose roughness can be described as self-affine over finite length scales. Expressions are also given for scattering from liquid surfaces, where it is shown that ``specular'' reflections only exist by virtue of a finite length cutoff to the mean-square height fluctuations. Expressions are also given for the scattering from randomly oriented surfaces, as studied in a typical small-angle scattering experiment. It is shown how various well-known asymptotic power laws in S(q) are obtained from the above theory. The distorted-wave Born approximation is next used to treat the case where the scattering is large (e.g., near the critical angle for total external reflection), and its limits of validity are discussed. Finally, the theory is compared with experimental results on x-ray scattering from a polished Pyrex glass surface.

Surface Roughness and Optical MeasurementsCultural Heritage Materials AnalysisElectron and X-Ray Spectroscopy TechniquesScatteringSpecular reflectionPhysicsScattering theoryOpticsScattering lengthBorn approximationSmall-angle neutron scatteringReflection (computer programming)Biological small-angle scattering
Citations
2,404
FWCI
28.40
field-weighted impact
References
44
Percentile
100%
vs. same field & year
Citations per year
References
The scattering of electromagnetic waves from rough surfaces
Proceedings of the IEEE · 1964 · 1,890 citations
Surface Studies of Solids by Total Reflection of X-Rays
Physical Review · 1954 · 5,107 citations
Citation Network

How this paper connects to the literature. Drag to explore, click any node to open that paper.