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@nist.gov (303) 497 5235 Andrew J. Slifka andrew.slifka@nist.gov 303.497.3744 Description Hydrogen embrittlement has been studied for over a century but understanding of the underlying mechanisms is still
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NIST only participates in the February and August reviews. While natural and anthropogenic contaminants threaten existing freshwater supplies, the use of alternative, “dirty” sources is increasing
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folding of a protein biologic is critical for drug efficacy, misfolding may impact drug safety by eliciting unwanted immune and/or other off-target responses. High-resolution measurements of the structure(s
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(1.6 μm). Numerous receivers are available including several 10” and 16” Schmidt-Cassegrain telescopes each equipped with a PMT and photon counting system for backscatter detection over integrated paths
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edward.sisco@nist.gov 301 975 2093 Description This opportunity focuses on developing new methods, metrics, approaches, and techniques for the forensic analysis of seized drugs. Seized drug analysis is the most
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structure-mechanical property relationships are needed to enable diverse applications of these materials. There is a need for quantitative measurement methods to study the interfacial properties of the filler
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@nist.gov 303.497.5252 Description New energy technologies demand improved knowledge of the thermal transport properties of fluid mixtures, often including water as a component. It is well established
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spectrum. With the march to higher frequencies, there is a growing clamor that conventional materials and characterization techniques are not up to the challenge. For example, commercial tunable dielectrics
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capable of interpreting this information and integrating data from other “-omic” platforms such as genomics, transcriptomics, and proteomics. Leveraging artificial neural networks is the linchpin
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and Faller. A pair of field masses translate adjacent to a pendulum bob, thereby displacing the bob in accord with the change in the gravitational field. The displacement is read-out using Fabry-Perot