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Field
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-driven optical spikes, enabling sensing systems with unprecedented speed and energy efficiency. A central objective of the project is to develop highly sensitive photodetector neurons by combining resonant
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of researchers with complementary expertise in molecular biology, oncology, medical radiation physics, radionuclide therapy, radiochemistry, magnetic resonance imaging (MRI), radiation dosimetry, and image
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magnetic resonance imaging (Flow MRI) is a powerful and non-invasive imaging technique that measures blood flow in time and space. It provides vital insights into key metrics for cardiovascular disease
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layer in the stack. Since this will lead to an intricate magnetic structure near the interfaces, we will also make use of polarized neutron reflectivity and nuclear resonant scattering to study the
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in: Magnetic Resonance Imaging Magnetic Particle Imaging Image-guided precision oncology The project will investigate molecular targets associated with the tumour microenvironment, including cancer
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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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physics, radionuclide therapy, radiochemistry, magnetic resonance imaging (MRI), radiation dosimetry, and image analysis. We offer Lund University is a public authority, which means that employees get
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inertness and mechanical robustness compared to standard Silicon. By utilizing SiC, the system achieves enhanced thermal stability for microhotplate configurations and improved frequency stability in resonant
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desirable: microwave engineering, confocal microscopy, scanning probe microscopy, magnetic resonance spectroscopy, and scientific programming in Python. Prior experience with hardware electronics such as
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testbed for new ideas, we use nonlinear nanophotonic resonators. We are driven by fundamental physics questions relevant to improve the energy efficiency, speed, and precision of optical technologies