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Field
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correlated electron systems, quantum magnetism, and emergent non-equilibrium phases of matter, quantum information and related fields are encouraged to apply. The successful applicant will join the research
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analysis, decoding techniques; structural connectivity, magnetic resonance spectroscopy; quantitative MRI Ability to work independently as well as collaboratively in an interdisciplinary research environment
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with symmetry-based formulations of electromagnetic quantities or light–matter interactions, including electric–magnetic structure, duality or related formalisms. 3. Experience of optical
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neurostimulatory techniques (ultrasound neurostimulation and/or transcranial magnetic stimulation) to test the causal role of targeted circuits in cognitive processes. You will design and conduct research into human
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National Energy Technology Laboratory (NETL) | Pittsburgh, Pennsylvania | United States | about 4 hours ago
and pressures. Rock characterization will involve nuclear magnetic resonance (NMR) Scanning, X-ray diffraction (XRD) mineral analysis, porosity measurements, and absolute permeability measurements
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of large and multidimensional datasets High Performance Computing (HPC) Low temperature physics High magnetic field physics Synchrotron and neutron facilities X-ray scattering Compensation and Additional
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position is based in the Department of Biomedical Engineering at the University of Delaware under the supervision of Professor Curtis Johnson and focuses on brain magnetic resonance elastography (MRE
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-Resolved Non-Uniform Sampling (TR-NUS) Nuclear Magnetic Resonance (NMR) and Time-Resolved Laplace (TR-L) NMR[1] using a low-field spectrometer. The main goal of the project is to develop and adapt
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of Nuclear Magnetic Resonance spectroscopy, and some knowledge of mass spectrometry, in complex biological matrices (cells, culture media, tissues and biofluids). Having significant familiarity with advanced
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of strongly-correlated materials, quantum magnets, and might hold the key of high-temperature superconductivity. Investigating its low-temperature many-body phases is extremely challenging using classical