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Project '' Facilitating a paradigm shift in osteosynthesis: Controlling biodegradation of magnesium alloys an their local effect on surrounding tissue'' (Nr. 10007007; project start 01.10.2025
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research will combine innovations in brine-to-cement technologies with advances in low-carbon binders such as reactive magnesium oxide cement (RMC) and belite-calcium sulfoaluminate (BCSA) systems
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the production and processing of aluminum, magnesium, and titanium components and is a leader in the further development of additive manufacturing processes, particularly wire-based arc additive manufacturing, a
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used. The cell chemistry and design differ from sodium to magnesium, calcium, and aluminum, but common to all is how different choices relate to the resulting structure, dynamics, and performance
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exciting research will combine innovations in brine-to-cement technologies with advances in low-carbon binders such as reactive magnesium oxide cement (RMC) and belite-calcium sulfoaluminate (BCSA) systems
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titanium- and magnesium-based implant materials for regenerative medicine are developed, produced and characterized. Researchers investigate the factors influencing the process chain and properties. In
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will combine innovations in brine-to-cement technologies with advances in low-carbon binders such as reactive magnesium oxide cement (RMC) and belite-calcium sulfoaluminate (BCSA) systems. The successful
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binders such as reactive magnesium oxide cement (RMC) and belite-calcium sulfoaluminate (BCSA) systems. The successful applicant will contribute to four main research thrusts that are central to the success
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place at the Research and Development Unit of Fiber Materials and Environmental Technologies (FibEnTech-UBI) of the University of Beira Interior ( https://fibentech.ubi.pt/en ) under the following
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laboratory in the Department of Chemical and Biomolecular Engineering (https://cde.nus.edu.sg/chbe/staff/zhu-guan-zhou/ ) pioneers advancements in new battery technology through innovations in electrode