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3. Reversible Valence TransitionEu3+→ Eu2+→ Eu3+in\documentclass[12pt]{minimal} \usepackage{amsmath} \usepackage{wasysym} \usepackage{amsfonts} \usepackage{amssymb} \usepackage{amsbsy} \usepackage{mathrsfs} \usepackage{upgreek} \setlength{\oddsidemargin}{-69pt} \begin{document}$${\text{Eu}}_{{{\text{1}}-x}}^{{{\text{2 + }}}}{\text{Eu}}_{x}^{{3 + }}M{{{\text{O}}}_{{{\text{3}} + x/{\text{2}}}}}$$\end{document}(M= Ti, Zr, Hf):An Analysis of XAFS and XRD Data

9. On the Mystery of One Bead

33. Reversible Valence Transition Eu3+ → Eu2+ → Eu3+ in $${\text{Eu}}_{{{\text{1}}-x}}^{{{\text{2 + }}}}{\text{Eu}}_{x}^{{3 + }}M{{{\text{O}}}_{{{\text{3}} + x/{\text{2}}}}}$$ (M = Ti, Zr, Hf): An Analysis of XAFS and XRD Data

35. Effective coordination numbers from EXAFS: General approaches for dioxides

38. Reversible Valence TransitionEu3+→ Eu2+→ Eu3+in(M= Ti, Zr, Hf):An Analysis of XAFS and XRD Data.

39. Effect of Tail Gas Recirculation Mode on the Activity and Selectivity of the Сo/SiO2 Catalyst for Fischer‒Tropsch Synthesis.

42. Pressure-induced structural and magnetic phase transitions in La0.75Ba0.25CoO2.9 studied with scattering methods and first-principle calculations

44. The application of HEXS and HERFD XANES for accurate structural characterization of actinide nanomaterials: application to ThO₂

45. The application of HEXS and HERFD XANES for accurate structural characterization of actinide nanomaterials: application to ThO₂.

48. Local Structure of Highly Imperfect Fluorite-Derived R2TiO5-Based (R = Yb, Lu) Solid Solutions.

49. Magnetic properties of new layered compounds LaM1/3Sb5/3O6, M = Co, Ni, and Cu, with a honeycomb structure.

50. The Microstructure of the Membrane Alloy Pd-9.1 at Y.

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