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Atomically thin layers of various materials can be combined - almost at will - into novel artificial materials, with graphene structures being the most prominent examples. If two (or more) layers
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-based self-healing, hybrid fiber architecture, Fe-SMA-based self-prestressing, and integrated structural health monitoring into one coherent system for thin, durable structural interventions. It can be
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containing CO2-negative SCMs, bio-based self-healing, hybrid fiber architecture, Fe-SMA-based self-prestressing, and integrated structural health monitoring into one coherent system for thin, durable
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the University of Basel. Experience in the following areas are of special interest: Mammalian cell culture and analysis (Microscopy, qRT-PCR) Hydrogel formulations and characterisation (Rheometry, Atomic Force
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the chemistry of superheavy elements – the newest and heaviest members of the periodic table. Through innovative single-atom experiments, state-of-the-art instrumentation, and international collaborations
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. Empa is a research institution of the ETH Domain. The nanotech@surfaces Laboratory is offering a PhD position focused on integrating atomically precise graphene nanoribbons (GNRs) into van der Waals
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that provide direct optical access to spin-physics and offer a tunability approaching that of cold-atom simulators. The Quantum Opto-Electronics Group (QOEG; https://smolenski-lab.com ), led by Prof. Dr. Tomasz
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of their users in the Swiss context. The successful candidate will lead the data collection of a two-wave panel study with the general population in Switzerland. The PhD project will then be extended by internal
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academic stay of 3 months is planned at UMONS (Prof Jérémy ODENT, Mons, Belgium) for the synthesis of soft robotics materials and an industrial secondment of 5 months is planned at Alemnis AG (Dr Jean-Marc
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chemical stability, binary and ternary Pd-alloys will be investigated (e.g., Pd, Ag).The gas transport mechanisms, including energy barriers related to H2 diffusion and resistance contributed by