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Conventional x-ray imaging is firmly established as an invaluable tool in medicine, security, research and manufacturing. However, conventional methods extract only a fraction of the sample
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crucial information on material quality, structure, and chemistry, in particular when coupled with X-ray diffraction studies and low-temperature transport properties. Importantly, in situ TEM measurement
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partners. The main goal of your PhD project will be to develop combined X-ray and visible-light imaging technologies and machine learning methods for high-throughput inspection tasks. The work will include
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: inverted-microscope imaging, organic-matter localisation, X-ray tomography (CT-scan) before and after dissolution. • Design and run CaCO3 dissolution experiments: O2 flux and pH measurements using
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to trace star formation, while gas can block the X-rays used to identify black hole activity. PRIMA therefore offers a unique view of these hidden processes. PRIMA is being proposed as NASA’s first $1
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physics, SXR spectroscopy, X-ray optics, UHV technology, and electron-ion coincidence imaging techniques. Main Tasks and Responsibilities The selected candidates will apply, and further develop, attosecond
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representations, and flow matching) for uncertainty-aware 3D reconstruction of coronary anatomy from 2D X-ray angiography; develop physics-informed neural networks and graph-based neural operators for fast
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with a broad toolkit: magneto-transport, ferromagnetic resonance and propagating spin-wave spectroscopy, and synchrotron-based scanning transmission X-ray microscopy (STXM) for direct, time-resolved
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levels of the vascular network will be investigated. Complementary characterisation using X-ray tomography and environmental scanning electron microscopy may also be carried out on the Institute's
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will rely on analytical techniques based on elemental mass spectrometry (ICP-MS) and molecular mass spectrometry (LC-ESI-Orbitrap-MS), as well as imaging techniques (X-ray microfluorescence) and