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Field
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the mechanical deformations caused by the encapsulated active biomolecules, you will explore ways to control their motion in 3D space. Synthetic microswimmers have many potential biomedical applications
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. size-selected cluster sources. Catalytic testing using ultra-sensitive chip-interfaced electrochemistry–mass spectrometry (EC–MS) and ultra-high-vacuum-compatible thermal catalytic setups. 3D atomic
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state-of-the-art in vivo two-photon microscopy in mice, and live-cell confocal microscopy using ex vivo 3D models. Genetically manipulate cancer cells using CRISPR/Cas9 to identify and target molecular
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involves feeding a metal filler wire, either coaxially or off-axis, into an electric arc to create a molten pool that solidifies on a substrate, enabling the layer-by-layer construction of 3D objects
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kinetics under physiologically relevant conditions Conduct in vitro biological validation using primary human cells such as osteoblasts and mesenchymal stromal cells Develop advanced 3D culture models
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awareness (SA), like our work on Situational Graphs (S-Graphs), improve on existing techniques by combining 3D environmental maps with detailed knowledge about objects into a single, optimized model. First
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are not limited to: Data visualisation Text mining Network analysis Digital mapping 3D modelling Augmented/Virtual reality AI and computer vision Digital exhibitions and archives Scholarly communication by
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-selected cluster sources. Catalytic testing using ultra-sensitive chip-interfaced electrochemistry–mass spectrometry (EC–MS) and ultra-high-vacuum-compatible thermal catalytic setups. 3D atomic-resolution
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have been produced but also used, our holistic and novel methodology combines Aegean and Egyptian iconography, Bronze Age and later texts, ethnographic and experimental studies, 3D modelling, and
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interest in Human Genetics, Reproductive Medicine and Cilia Biology Previous experience with immunofluorescence imaging, specialized 3D cell culture technologies, genetic analyses, functional assessment