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, internal dynamics, materials physics and chemistry is of primary importance in determining the processing, performance and viability of advanced ceramic components such as relevant to solid oxide or hydrogen
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and microprobe that uses a magnetic-sector mass spectrometer and special ion optics to produce either a direct, mass-resolved microscope image or a scanned microprobe image of the sample surface; and (2
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of potential reference materials for improved measurements of protein aggregates and particulates. Methods used in our studies include microflow imaging, light obscuration, coulter counting, size exclusion
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state lighting and water purification), and field emitting ion sources for mass spectrometry. We are also working on the design and fabrication of prototype nanowire electronic devices such as FETs. We
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to advance our capabilities for characterizing gene delivery systems at the single-particle level. There will also be opportunities for interested candidates to develop advanced data processing techniques and
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RAP opportunity at National Institute of Standards and Technology NIST Fatigue and Fracture of Metallic Materials Processed via Additive Manufacturing Location Material Measurement Laboratory
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characterization (ultrasound, x-ray scattering, IR imaging), and experimental equipment design (CAD, controls (i.e., LabView, Python, Arduino, G-code), image/video processing (i.e., ImageJ). [1] A
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effort within the Nanoscale Device Characterization Division. Current efforts focus on imaging the switching process with a range of techniques including thermal atomic force microscopy, electron-beam
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NIST only participates in the February and August reviews. Metals-based additive manufacturing (AM) processes, or metals 3D printing, such as laser powder bed fusion and directed energy deposition
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semiconductors (InAs quantum dots, ErAs nanoparticles) and superconductors (WSi, MoSi, NbTiN) for single-photon detectors, all of which are developed at NIST. In addition to device processing and electrical and