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October 8, 2025Applied Sciences5 citationsOpen Access

X-Ray Absorption and Emission Spectroscopy in Pharmaceutical Applications: From Local Atomic Structure Elucidation to Protein-Metal Complex Analysis—A Review

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KWKlaudia WojtaszekKTKrzysztof TyrałaEBEwelina Błońska-Sikora

Key Points

  • Recent studies demonstrate that x-ray absorption spectroscopy can accurately determine oxidation states in various chemical compounds, revealing critical details about their electronic structure.
  • X-ray emission spectroscopy offers high sensitivity to coordination and local geometry, making it valuable for analyzing interactions between active pharmaceutical ingredients and biomolecules.
  • Modern applications of these techniques frequently utilize synchrotron radiation, enabling detailed in situ experiments across solids, liquids, and gases.
  • Despite their broad potential in analytical chemistry, the use of x-ray spectroscopy in pharmaceutical research remains limited, indicating an area for future exploration.

Abstract

X-ray absorption spectroscopy (XAS) and X-ray emission spectroscopy (XES) are analytical techniques enabling precise analysis of the electronic structure and local atomic environment in chemical compounds and materials. Their application spans materials science, chemistry, biology, and environmental sciences, supporting studies on catalytic mechanisms, redox processes, and metal speciation. A key advantage of both techniques is element selectivity, allowing the analysis of specific elements without matrix interference. Their high sensitivity to chemical state and coordination enables determination of oxidation states, electronic configuration, and local geometry. These methods are applicable to solids, liquids, and gases without special sample preparation. Modern XAS and XES studies are typically performed using synchrotron radiation, which provides an intense, monochromatic X-ray source and allows advanced in situ and operando experiments. Sub-techniques such as XANES (X-ray absorption near-edge structure), EXAFS (Extended X-ray Absorption Fine Structure), and RIXS (resonant inelastic X-ray scattering) offer enhanced insights into oxidation states, local structure, and electronic excitations. Despite their broad scientific use, applications in pharmaceutical research remain limited. Nevertheless, recent studies highlight their potential in analyzing crystalline active pharmaceutical ingredients (APIs), drug–biomolecule interactions, and differences in drug activity. This review introduces the fundamental aspects of XAS and XES, with an emphasis on practical considerations for pharmaceutical applications, including experimental design and basic spectral interpretation.

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Cite This Study

Wojtaszek et al. (2025) studied this question.

synapsesocial.com/papers/68e6d7971ffa7aa7d63d1596https://doi.org/10.3390/app151910784
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