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behaviour of (new) materials and molecules. This is achieved by exposing them to extreme conditions, including very high magnetic fields and powerful free-electron lasers. HFML-FELIX operates an international
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clocks. Join Us! Optical clocks have reached a precision of better than 10-18, which enables them to resolve the relativistic time dilation by only 1cm height difference in the gravitational field of earth
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theories can describe how exchange correlations stabilize magnetically ordered ground states, they do not capture the non-equilibrium kinetics of ordering, nor the ultimate timescale on which order emerges
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-ICP-MS, 1 ICP-MS and 1 ICP-OES instruments and two laser systems for in situ analyses. A new metal free clean laboratory is to be installed within new VO Research Building. The groups expertise with
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advanced molecular imaging technologies, including MALDI Mass Spectrometry Imaging (MALDI-MSI), DESI-MSI, transmission-mode MALDI-MSI, Nanoscale SIMS, Laser MicroDissection (LMD) and high-resolution mass
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, enabling more frequent, scalable, and data-driven asset management. The project will investigate the integration of Axle Box Acceleration (ABA), Laser Doppler Vibrometry (LDV), and Track Geometry (TG) data
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measurement system (e.g., based on Axle Box Acceleration (ABA) or Laser Doppler Vibrometry (LDV)) will be designed and implemented to collect additional data for incorporation into the Health Passport. Advanced
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Acceleration (ABA), Laser Doppler Vibrometry (LDV), and Track Geometry (TG) data to enable indirect and frequent assessments of railway embankment conditions. Using measurement data collected by the CTO
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on selected instrumented railway bridges. Building on these insights, an on-board measurement system (e.g., based on Axle Box Acceleration (ABA) or Laser Doppler Vibrometry (LDV)) will be designed and
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wet-chemistry techniques (clean laboratory work), TIMS and MC-ICPMS mass spectrometry (PhD1), and by in situ Laser Ablation MC-ICPMS (PhD2) and SIMS techniques (PhD3). Applicants thus preferably have