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Field
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— the conversion of photon energy into matter via the multiphoton Breit-Wheeler process, enabled by the advent of multi-petawatt laser technologies. The primary objective of the project is to exploit the theory and
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physicochemistry applied to complex matrices, particularly environmental samples; * Knowledge of optics and laser technologies is appreciated but not required; * Skills in data processing and analysis, including
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laser pulses, develop attosecond pulse sources and to study ultrafast processes in semiconductor nanostructures using electron instrumentation. The position(s) imply the development of ultra-short pulse
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The Center for Intelligent Optics (CIO) develops advanced optical technologies, including imaging, spectroscopy, and laser ablation methods. Our goal is to bridge these cutting-edge laser
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metal matrix composite (MMC) coatings. You will help fill critical knowledge gaps in process monitoring, optimisation, and control for laser cladding, contributing directly to the development of a cost
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laser pulses, develop attosecond pulse sources and to study ultrafast processes in semiconductor nanostructures using electron instrumentation. The position(s) imply the development of ultra-short pulse
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composite (MMC) coatings. You will help fill critical knowledge gaps in process monitoring, optimisation, and control for laser cladding, contributing directly to the development of a cost effective
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optical and laser diagnostic techniques. The project aims to improve the understanding of the physical and chemical processes in non-thermal plasmas and how these plasmas interact with material surfaces
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post-AM processing of non-weldable Ni-base superalloys and Ti-alloys using recent advances in laser processing and in-situ process control. Position is connected to the competence centre Centre for
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Additive Friction Stir Deposition (AFSD), cold spray, and laser powder bed fusion (LPBF), with an emphasis on establishing process–structure–property relationships through integrated experimental and