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factor measured by inelastic neutron scattering, or other tools like resonant inelastic X-ray scattering spectroscopy, Raman spectroscopy, or reflection/transmission measurements). However, due to
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nanoparticle-based systems Operando characterization by surface sensitive X-ray diffraction at synchrotron radiation In-situ characterization by Infrared spectroscopy and mass spectrometry Collaborate closely
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ophthalmoscope using ray-tracing methods, research on new scanning protocols to optimize photon conting Participation in the development of demonstrators of the developed technologies Application of the developed
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possess translational symmetry, the role of structure and symmetry in glasses is not established. This research programme involves the development of new x-ray and electron diffraction-based methods
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to molecular indicators alone. We have now at our disposal a novel nanometer resolution 3D correlative imaging pipeline that combines light and X-rays and allows us to utilise the cellular landscape as a useful
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line, glovebox) Proficiency in standard characterization techniques (NMR, IR, MS; GC, GC-MS X-ray diffraction) Familiarity with catalytic reactions; experience with high-pressure equipment (autoclaves
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the JR166 data set. This includes advanced gamma-ray spectroscopy analysis, extraction of transition strengths, and systematic comparison with state-of-the-art theoretical models. The project offers
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of the obtained materials using elemental analysis, nuclear magnetic resonance (RMN), ICP-OES, infrared spectroscopy (IR), ultrared-visible spectroscopy (UV-Vis) and Raman spectroscopy, X-ray diffraction, X-ray
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Testing (NDT) – a crucial technique used in industries to assess materials, components, and structures without causing damage. This PhD project focuses on advancing Ultrasound Testing and X-ray Computed
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SAS), will be used. PhD candidate will acquire a broad range of experimental skills in materials diagnostics (e.g., X-ray diffraction, atomic force microscopy, Raman spectroscopy, and advanced