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Field
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quality within building design and processes, building construction and safety, building energy and installation, solid mechanics, fluid mechanics, materials technology, manufacturing engineering
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When light illuminates nano-sized metallic structures, the free electrons in the metal collectively oscillate, creating `plasmons'. By specifically designing the geometry and arrangement of the nano
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correctly in these cells. The objective of the project is to determine the molecular architecture of the connector and the mechanisms that regulate its assembly, and to identify its functions. This will
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quantum mechanical effects are typically too expensive for simulations of disordered systems like liquids. This PhD will develop and deploy the tools needed high-fidelity simulations: machine learned
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for achieving the desired mechanical and functional properties of the final structures. Unlike conventional DIW systems or the recently developed FL3DP technique that operate on fixed Cartesian coordinate with a
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the formation of rocks and determine the mechanical properties of many engineered materials, making them a key area of research in both Earth Science and Metallurgy. When subjected to changes in environmental
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mechanical anisotropy and compromise the durability of printed structures. Understanding these phenomena is critical for ensuring the reliability and scalability of 3D-printed concrete in real-world
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mechanisms during DNA replication. By integrating defined DNA templates, biochemical assays, and mass spectrometry, we will uncover how these structures are detected and processed, and what consequences
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of plasmonic metasurfaces, functionalize them with biomolecules such as DNA, and then experimentally quantify the fluorescence enhancement mechanisms using single-molecule spectroscopy and super-resolution
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of biodegradation of additively manufactured Mg and Zn alloys under mechanical load. Host: Helmholtz-Zentrum Hereon, Geesthacht, Germany, with PhD degree awarded by Kiel University (CAU), Germany. Read