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Field
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. Technology such as the electricity grid, which our faculty is helping to make completely sustainable and future-proof. At the same time, we are developing the chips and sensors of the future, whilst also
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. Faculty Mechanical Engineering From chip to ship. From machine to human being. From idea to solution. Driven by a deep-rooted desire to understand our environment and discover its underlying mechanisms
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knowledge, innovations, and solutions that help move the world forward. Faculty Mechanical Engineering From chip to ship. From machine to human being. From idea to solution. Driven by a deep-rooted desire to
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data analysis, monitoring outcomes, performing lab maintenance, and/or performing experiments and creating creative projects of ALRI affiliated faculty. Required Minimum Qualifications: Bachelor's degree
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you will design the next generation of energy-efficient digital integrated circuits, taking them from RTL to a fabricated chip and PCB that you measure in our own labs. The position is part of
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. Faculty Mechanical Engineering From chip to ship. From machine to human being. From idea to solution. Driven by a deep-rooted desire to understand our environment and discover its underlying mechanisms
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forces. The façade is being iteratively improved in BIO-SKIN via the BIO-SKIN Living Lab on ten existing buildings. As a PhD candidate you will connect ecology, material choices, circularity, user
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designers and lawyers are joining forces. The façade is being iteratively improved in BIO-SKIN via the BIO-SKIN Living Lab on ten existing buildings. As a PhD candidate you will connect ecology, material
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science. Project description (DC10 – CNR-IFN) Project title: Design and Micromachining of Microfluidic Devices for Chiral Sensing Applications (WP3) DC10 aims to develop next-generation lab-on-a-chip
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of “tramp elements” from scrap and variable feedstocks, which can negatively affect steel quality and slag usability. This PhD project aims to develop a fundamental thermodynamic understanding of how tramp