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Field
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the oscillation and decay of waves in systems where energy can escape to infinity, replacing eigenvalues and eigenfunction expansions in non-compact domains. The consideration of analytic or Gevrey regularity in
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focused on the development of next-generation compact hyperspectral spectropolarimetric cameras. Hyperspectral imaging enables simultaneous acquisition of spatial and spectral information, supporting
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, nanophotonics, and fluidics to create compact devices capable of generating and exploiting synthetic chiral light for highly sensitive molecular detection. The research will contribute to the development
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. The creation of magnets producing 20 T or more is a major challenge for physics (NMR, high-energy physics) as well as for the realization of compact Tokamaks, which have become highly attractive in recent years
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AI systems for real-time 3D mapping on compact, low-power devices. The project will combine optical sensing, event-based vision, and radio-frequency (RF) data with advanced AI to build robust mapping
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that make real-world impact. Together we will make technological advances that bring compact, reliable and economical energy management. Motivation This PhD project focuses on the development of next
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coherence time. This PhD thesis is part of a long-term compact optical clock project based on the Yb+ 435.5 nm transition frequency, with a target fractional frequency stability below 10-14 at 1 s and less
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will develop nanoscale devices which use magnons (collective excitations in magnetic order) as information carriers for ultra-efficient, compact, brain-inspired computing. This project is positioned
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digital systems. This PhD project translates the principle into a compact, passive optical solution. The project will combine: Mathematical modelling and simulation of optical/photonic structures and
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, offshore technologies, and the wider energy transition. The relatively compact campus supports close professional relationships, close interaction with supervisors and colleagues, and collaboration across