Geometrical Structure of Yttrium and Metal–Bromine Complexes in Solution: Limitations of Extended X-ray Absorption Fine Structure Analysis (EXAFS)
J. Chaboy, Adela Muñoz-Páez, Sofía Díaz‐Moreno
Abstract
J. Chaboy, Adela Muñoz-Páez, Sofía Díaz‐Moreno
Abstract
An extensive study on the appearance of multi-electron features in the X-ray absorption spectra of several yttrium(III)-based compounds has been performed. The existence of a multi-electron transition of non-negligible intensity within the extended X-ray absorption fine structure (EXAFS) region of the Y K-edge spectra has been proven. The impact of such features in the EXAFS analysis is made evident for aqueous solutions of YBr3⋅6 H2O in liquid and glassy states in the concentration range 0.005–2.0 M, in which this transition induces an overestimation in the coordination numbers derived from EXAFS. We have performed theoretical computation of cross-sections for the double-electron processes at the K-edge of both Y and Br. These computations have been applied to the experimental EXAFS K-edge spectra of both Y and Br in several solids and in aqueous solutions. While in the case of Y K-edge spectra the presence of such multi-electron transitions was seen to seriously affect the standard EXAFS analysis, its influence in the case of Br K-edge spectra was determined to be negligible.
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An extensive study on the appearance of multi-electron features in the X-ray absorption spectra of several yttrium(III)-based compounds has been performed. The existence of a multi-electron transition of non-negligible intensity within the extended X-ray absorption fine structure (EXAFS) region of the Y K-edge spectra has been proven. The impact of such features in the EXAFS analysis is made evident for aqueous solutions of YBr3⋅6 H2O in liquid and glassy states in the concentration range 0.005–2.0 M, in which this transition induces an overestimation in the coordination numbers derived from EXAFS. We have performed theoretical computation of cross-sections for the double-electron processes at the K-edge of both Y and Br. These computations have been applied to the experimental EXAFS K-edge spectra of both Y and Br in several solids and in aqueous solutions. While in the case of Y K-edge spectra the presence of such multi-electron transitions was seen to seriously affect the standard EXAFS analysis, its influence in the case of Br K-edge spectra was determined to be negligible.
Key concepts: Extended X-ray absorption fine structure, Yttrium, Surface-extended X-ray absorption fine structure, Absorption (acoustics), Absorption spectroscopy, K-edge, Aqueous solution, Spectral line