373 embedded-system "https:" "https:" "https:" "https:" "Grenoble INP Institute of Engineering" positions at NIST
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@nist.gov 303 497 5530 Nikolas Wilson Hrabe nik.hrabe@nist.gov 303.497.3424 Description Additive manufacturing (AM) is a transformational technology for fabricating complex metallic shapes directly from 3-D
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resulting in persistent microscopic and nanoscale particles that can enter the food chain. There is a growing public awareness of the potential risks associated with these materials and an increasing focus
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. The composition explicit distillation curve method, developed at NIST, provides a unique approach to join fuel composition with the thermophysical properties. Of critical importance is the moiety family breakdown
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Poppendieck dustin.poppendieck@nist.gov 301.975.8423 Description This program is designed to provide the measurement science to support the development of industry-consensus standards and guides related
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responsible for the observed properties. The results obtained are then used to develop models that can be used to simulate systems with up to hundreds of thousands of atoms. Monte Carlo and molecular dynamics
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301.975.4579 Description The purpose of this research is to investigate material release from nanocomposites used in commerce, with a focus on nanocomposites commonly used in consumer products. The research
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. The bioanalytical science group is directed toward developing a suite of fundamental measurement science, technology, standards, and reference data to enable more accurate and confident characterization of key
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Systems Division opportunity location 50.73.11.B5285 Gaithersburg, MD NIST only participates in the February and August reviews. Advisers name email phone Xiaohong Gu xiaohong.gu@nist.gov 301.975.6523 Li
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301.975.3716 Description In support of the development of future electronic systems, research focuses in areas that relate to measurements and physics on the nanometer scale based on scanning tunneling
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nanocomposites containing these networks. Our objective is to develop metrologies to understand how morphology and functionalization affect the alternating current (AC) conductivity of composite materials