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combine everything from physics and chemistry to civil and electrical engineering. The Materials Science and Engineering Department at Carnegie Mellon is seeking a Postdoctoral researcher to work on the
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and its plasticity. The project will be carried out by applying “all optical physiology” methods, i.e. a combination of calcium imaging with optogenetics, in freely behaving animals in Paolo Medini’s
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battery performance. The project combines expertise in materials science, electrochemistry, and physics, and offers a collaborative environment with access to well-equipped labs and technical support. About
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systems demand power amplifiers combining high efficiency, linearity, and frequency agility. Meeting these requirements calls for a deeper understanding of how semiconductor device properties influence
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ingredients for Earth-like magnetic fields on millennial time scales in dynamo models. The research activities are two-fold. First, the candidate will run numerical dynamo simulations with various combinations
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Currenti et al. (2008). To characterize the sources, these models will need to be combined with inversions. We will use near-neighborhood inversions (Sambridge et al., 1999a and 1999b), already implemented
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EEG signals, and combine these scalp with intracranial (thalamic) recordings in the NHPs for unravelling thalamocortical circuits in perception. Activities will involve setting-up the experiments
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porous media (imbibition, wetting, flow, etc.). The approach will be essentially experimental, combining model debinding tests on various specimens with characterizations. • Determine the main mechanisms
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elements of the chain (transmitter, data centre, core and access network, terminal). This model will be based on a combination of data from the literature, life cycle analysis databases and assessments
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cytoprotective mechanisms in the neonatal brain. Combine intravital microscopy of the brain vasculature with cellular-molecular studies in cerebrovascular myocytes, endothelial cells, and astrocytes to identify