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, chemistry, and mathematical modelling. The long-term goal is to derive design principles for constructing smart, adaptive microsystems, potentially useful for targeted drug delivery, cargo transport
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of Precision and Microsystems Engineering (PME) at the Delft University of Technology. It is funded through the Dutch National Growth Fund NXTGEN programme of NWO. This vacancy is for a four-year PhD researcher
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for constructing smart, adaptive microsystems, potentially useful for targeted drug delivery, cargo transport, biosensing, microfluidic mixing, or self-healing materials. The successful candidate will join the
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for constructing smart, adaptive microsystems, potentially useful for targeted drug delivery, cargo transport, biosensing, microfluidic mixing, or self-healing materials. The successful candidate will join the
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for the Netherlands ME/CFS Cohort and Biobank at the Donders Centre for Cognitive Neuroimaging in Nijmegen perform advanced analyses of neuroimaging data (including Quantitative susceptibility mapping (QSM), Magnetic
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information of subcellular structures and biomolecules. The PhD candidate will be employed at the Department of Precision and Microsystems Engineering (PME) and work in close collaboration with the Department
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Microsystems Engineering (PME) and work in close collaboration with the Department of Bionanosciences (BN) at TU Delft. The candidate will also collaborate with scientists and engineers at DENSsolutions
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and conducts research in the fields of nanotechnology, microsystems, materials science and microelectronics. Unique of MESA+ is its multidisciplinary composition. About the organisation The faculty
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optics, magnetic resonance and nanoscale fabrication to detect and control individual spins associated to defect centers. With these controlled systems of coupled spins, we aim to answer questions such as
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their applications for quantum science and technology. We use a combination of quantum optics, magnetic resonance and nanoscale fabrication to detect and control individual spins associated to defect