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Field
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Magnetic Stimulation) for human neuroscience research. Experience with GitHub/GitLab repositories and collaborative coding practices. Background in teaching or training researchers in neuroimaging
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vitro. The lab employs state-of-the-art biophysical techniques (e.g. advanced single-molecule fluorescence microscopy, optical and magnetic tweezers) together with in-house molecular biology and
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, electronic, optical, magnetic, and chemical properties for applications in electronics, sensing, energy, biomedicine, and quantum technologies, bridging fundamental materials physics with device-oriented
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electronics, solid-state transformers, magnetics, data-driven and AI-based energy management, and electric grid resilience. Investigate communication networks, control architectures, edge devices, and edge
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resonance. Background. By removing variable background signals in fluorescence-based assays, optically detected magnetic resonance (ODMR) of solid-state spins can yield several orders-of-magnitude enhanced
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of observed massive close binaries with one or more pulsating components. The aim is to use their measured asteroseismic properties, such as internal rotation and magnetic fields, to develop new modelling tools
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background, with less than 5 years post-receipt of PhD. Experience with optical systems, lasers, spectroscopy, quantum optics, spin physics, magnetic resonance, or related spin-based quantum platforms
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of the principles, mechanisms, and applications of non-invasive neuromodulation technologies, including transcranial magnetic stimulation (TMS), transcranial alternating current stimulation (tACS), transcranial
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Magnetics; Micro and Nano Structures; Sustainable Energy Systems, Power Electronics and Drives; Systems and Controls. To learn more about the Department of Electrical and Computer Engineering at
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following neuroimaging methods and modalities: functional connectivity, representational similarity analysis, decoding techniques; structural connectivity, magnetic resonance spectroscopy; quantitative MRI