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of fit for purpose high-quality reference materials that can be used to help normalize and benchmark data from the various EV isolation and characterization methods is a key bottle-neck inhibiting
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301.975.3438 Description NIST has developed an integrated measurement services program for forensic and cannabis (hemp and marijuana) laboratories to help ensure the quality of routine analysis of cannabis plant
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understanding of the physics of the QAHE necessary to design and develop new quantum resistance standards. Additional applications in quantum information science (QIS) can be envisioned for robust QAHE devices
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of complex parts. Assess methods for calibration and characterization of commercial BJAM machines. Develop and conduct benchmarking experiments and datasets for model validation of multi-phase computation
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NIST only participates in the February and August reviews. Computer-based tools, including the NIST Alternatives for Resilient Communities model, or NIST ARC, are being developed to support
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.). This processing system can also be expanded to assist reviewers in their assessment of scientific manuscripts, which is in extremely high demand now. Thermodynamics Research Center (TRC) at NIST collects, stores
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extensive internal and external collaborations, providing access to a full range of state-of-the-art materials characterization and computational modeling capabilities. The results will have broad
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characterization of new reference materials to assist in reducing measurement variance in the metabolomics community and allow for interlaboratory comparison of data; application of new analytical methodology
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NIST only participates in the February and August reviews. NIST has recently launched a program to develop high accuracy 3D thermal imaging and control using thermosensitive magnetic nano-objects
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are developing microfluidics to measure material properties and structure. Protein, polymer and surfactant solutions and suspensions and emulsions are being characterized using computer-controlled microfluidic