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-modal optical microscopy methods, such as fluorescence based super-resolution microscopy and label-free optical diffraction tomography and quantitative phase microscopy. Another important aspect of
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National Laboratory to accelerate materials discovery by integrating advanced 3D X-ray diffraction experiments, mechanistic modeling, and artificial intelligence. A powerful set of high-resolution 3D X-ray
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to develop and apply multi-modal optical microscopy methods, such as fluorescence based super-resolution microscopy and label-free optical diffraction tomography and quantitative phase microscopy. Another
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to include: Experience in the use of multi-technique characterisation of inorganic materials, including at least some of the following: pXRD, single-crystal XRD, SEM/EDX, DSC/TGA/STA, EXAFS, laser diffraction
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using X-ray coherent diffractive imaging and nanofabrications methods in two inter-related sub-projects. In one the student will manufacture structured ferroelectric films for demonstration of our newly
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) Production through arc melting, powder metallurgy or additive manufacturing; (3) Characterisation using advanced electron microscopy (SEM, EBSD, TEM), APT and x-ray diffraction methods; (4) Mechanical Testing
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Knowledge: Experience with advanced microscopy techniques such as transmission electron microscopy (TEM), scanning electron microscopy (SEM), electron backscatter diffraction (EBSD), and nano/microindentation
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and reaction products by standard techniques (NMR, IR, Mass spectrometry, X-ray diffraction, TEM, and DFT calculations also desirable). The Zaleski Lab is a dynamic multidisciplinary laboratory
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catalyst design and materials characterization by standard techniques (NMR, IR, Mass spectrometry, X-ray diffraction, TEM, and DFT calculations desirable). The Zaleski Lab is a dynamic multidisciplinary