177 evolution-"https:"-"https:"-"https:"-"https:"-"https:"-"https:"-"Göteborgs-universitet" positions at NIST
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Sorbent materials are candidates for many industrial and sustainable development applications, including carbon capture, hydrogen and methane storage, gas separation and purification, and catalysis. However
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the development of new expertise in acoustic measurements of fluids, from bulk samples down to the tiny volumes used in microfluidic devices. The design, fabrication, measurement, and analysis of integrated devices
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Obrzut jan.obrzut@nist.gov 301.975.6845 Christopher L. Soles christopher.soles@nist.gov 301.975.8087 Description This research is focused on the development and use of cellulose nanocrystals (CNC) in
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and data-driven models [2, 3]. Metric Identification: Identifying key quality metrics for various "digital objects" throughout the ICME development lifecycle. Uncertainty Quantification & Propagation
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related botanical materials. Research topics include (1) development of liquid chromatographic (LC) separations of plant constituents, with detection by absorbance, fluorescence, electrochemical, and/or
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optomechanical sensors [3]. This very active area of research combines work in instrument development, nanophotonics, and spectroscopy. [1] Long, D. A., et al. (2014). "Multiheterodyne spectroscopy with optical
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has an active effort in the development of electron microscopy methods for high spatial resolution materials characterization and has recently upgraded its aberration-corrected STEM with a high-speed
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, economics, and all branches of science. Current concerns include the development and analysis of algorithms for the solution of problems of estimation, simulation and control of complex systems, and their
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reactions involving residual vacuum gases, (2) determinations of the outgassing rate of water vapor and other molecules from surfaces, (3) development of holographic microscopy for critical defect inspection
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development of RF MEMS/NEMS resonators. Several resonator geometries are being developed that combine low-loss mechanical design, unique materials, and electrostatic, electrothermal, and piezoelectric actuation