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that combine experience from traditional ceramic processing with recent breakthroughs in densification of ceramics, like cold sintering[2] or ultra-fast high-temperature sintering [3]. Our effort at NIST focuses
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to form benchmark transcriptomes. Finally, to use these benchmark data, the postdoc could work with methods developers to develop appropriate performance metrics for other ‘omics and develop tools to use
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are essential for broad adoption of these methods, this postdoc would collaborate with a unique array of technology and informatics developers in the Genome in a Bottle Consortium to develop authoritative de novo
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RAP opportunity at National Institute of Standards and Technology NIST Machine Learning Driven Autonomous Metrology System Location Physical Measurement Laboratory, Sensor Science Division opportunity location 50.68.51.C0577 Gaithersburg, MD NIST only participates in the February and August...
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RAP opportunity at National Institute of Standards and Technology NIST Channel Sounding and Radio Frequency Propagation Location Communications Technology Laboratory, Radio Frequency Technology Division opportunity location 50.67.22.C1019 Boulder, CO NIST only participates in the February...
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research program focuses on engineering these nanoparticles with desired physical and chemical properties and specified functionality through wet-chemistry synthesis. We are particularly interested in
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for electrical energy storage at grid scale are severely limited by the rheology, energy density, and stability of the working fluids. These fluids have requirements that are in conflict and require performance
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, but face technical challenges to achieve their potential for high efficiency. Third generation devices are now being developed that exploit nanoscale three-dimensional (3D) structures to achieve higher
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operating frequencies above 100 GHz are used in a wide variety of applications—examples include radio astronomy, climate monitoring, mm-wave imaging, and high-speed wireless data relays. The main method
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. Rev., 2022, 51, 5248-5267. 3. Wang M., Ramer G., Perez-Morelo D. J., Pavlidis G., Schwartz J. J., Yu L., Ilic R., Aksyuk V. A., Centrone A. "High throughput nanoimaging of thermal conductivity and