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RAP opportunity at National Institute of Standards and Technology NIST Enabling Science from Big Microscopy Image Data Location Information Technology Laboratory, Software and Systems Division
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to predict materials properties is essential to improve materials design methods. This research will focus on the development and integration of first principle calculations; atomistic simulations; and/or
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. The research includes experimental measurements on industrially-pertinent materials using a range of advanced methods (various modes of transmission electron microscopy, x-ray/neutron scattering, x-ray
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Advancing the state of the art in measurements of sound, vibration, force, acceleration and velocity
measurements of sound, vibration, force, acceleration, and velocity at the highest levels of accuracy, and uses the developed methods to disseminate traceability of such measurements to society. We welcome
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@nist.gov 301.975.4310 Description The Fire Research Division of NIST’s Engineering Laboratory develops and maintains a computational fluid dynamics software package for modeling building and wildland fires
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: Developing computational methods to propagate quality issues, such as uncertainty, from upstream data sources to downstream digital objects. This propagation is crucial for ensuring the overall trustworthiness
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[email protected] 843.460.9944 Description Omic based non-targeted measurement methods hold great promise for the advancement of precision and personalized medicine. By integrating proteomic, metabolomic and
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current limitations on material validation, which are linked to limitations on post-process nondestructive evaluation (NDE) with conventional methods. This project seeks to develop innovative methods
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cellular debris, non-EV vesicles, protein aggregates, viruses, etc., before the isolated EVs can be manufactured into high quality drug delivery vehicles and/or therapeutic agents. The most common method
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measurement methods need to be developed to evaluate the filler/nanoparticle polymer interface. The rich interfacial functionality present in new nanofibers based on cellulose and chitin, provide for stress