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microfluidic networks.Our goal is to develop systems that enable accurate, high-throughput, and dynamic measurement of materials in flow, which will, for example, improve the ability to specify composition and
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301 975 3155 Description The project aims to develop computational imaging microscopy using a table-top high harmonic generation EUV source for quantitative characterization of nanoscale structures
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are developing high order integral equation methods and numerical tools for computational electromagnetics. This research focuses on the frequency domain electromagnetic field solvers that involve automatic
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. This research aims to develop the label-free chemical imaging method to investigate the microscopic structure and composition of new biomaterials and smart polymers via collaboration with material scientists and
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these complex communities by developing sample preparation techniques that are compatible with NMR and mass spectrometry-based techniques. This will allow parallel multimodal analysis including proteomic
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Obrzut [email protected] 301.975.6845 Christopher L. Soles [email protected] 301.975.8087 Description This research is focused on the development and use of cellulose nanocrystals (CNC) in
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.B1995 Gaithersburg, MD NIST only participates in the February and August reviews. Advisers name email phone Hui Wu [email protected] 301 975 2387 Description We develop and study new materials for carbon
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semiconductor manufactures to benchmark commercial and in-house strain measurement methods on industrially relevant samples, as well as developing reference materials to allow users of the techniques to evaluate
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quantities for meaningful comparison. We lead the development of innovative standards and novel calibrations to achieve accuracy in localization microscopy [1, 2], with applications ranging from nanoplastic
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, and light-matter interactions. This research opportunity is focused on developing compact, integrated cavity optomechanical devices that push the state of the art in terms of sensitivity and accuracy