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academia and practice regarding the cost-effectiveness analysis of safety instrumented systems. You will conduct cost-effectiveness analyses by designing cost models to highlight trade-offs in
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instrumented systems. You will conduct cost-effectiveness analyses by designing cost models to highlight trade-offs in the implementation of safety instrumented systems. You will evaluate how system design
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“Handshake Complexes of Chiral Nanoparticles and Proteins” (CHIRAL-PRO ). The overarching goal of CHIRAL-PRO is to develop a widely applicable methodology to design chiral nanoparticles (NPs) with exceptional
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plan of the research group A-PECS and you compete for externally funded research grants. You will report on the results of your research and produce academic publications. You will assist in ongoing
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applicable methodology to design chiral nanoparticles (NPs) with exceptional optical activity, for strong and predictable enantioselective interactions with nanoscale biological entities, such as proteins and
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evaluation of FAPI-based radioligands, focusing on their imaging and therapeutic potential. Key tasks include: Designing, planning, and executing preclinical experiments in cell and animal models of cancer
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new research projects according to the strategic plan of the research group A-PECS and you compete for externally funded research grants. You will report on the results of your research and produce
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, focusing on their imaging and therapeutic potential. Key tasks include: Designing, planning, and executing preclinical experiments in cell and animal models of cancer. Conducting biodistribution, dosimetry
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' responses, the project will combine qualitative focus groups, cross-sectional surveys, and survey experiments. This integrated design allows for a comprehensive analysis of both top-down (elite-driven) and
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research and develop novel electrochemical sensing strategies for nucleic acid detection. You will develop new research projects according to the strategic plan of the research group A-PECS and you compete