119 structural-engineering-"https:"-"https:"-"https:"-"https:"-"https:"-"U.S" positions at NIST
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transformations produced by metabolically active microbes. Microbial abundances and growth rates (fitness), determined using NGS, allow predictions of changes to community structure over time. While
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Advancing State-of-the-Art Material Phase and Crystallographic Texture Characterization NIST only participates in the February and August reviews. While phase structure and texture have been
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that are poorly-defined and irreproducible. We are currently working to (1) use 2D and 3D bioprinting in vitro to engineer structured microbial communities that mimic the complex spatial and genotypic organization
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applications in manufacturing, aerospace, defense, engines, energy production, and research. However, substantial challenges to implementing such sensors are associated with the temperature limits, thermally
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. Chemical engineers constantly need reliable property data for process design development and optimization. This information is predominantly coming from scientific publications. Thousands of papers
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quantitative CR-PFM to novel materials and device structures, such as piezoelectric devices for energy harvesting and nano-generation, or lithium ion battery materials for improved power generation and charging
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these challenges, the Fire Research Division of NIST’s Engineering Laboratory is developing the next generation of AI-enabled firefighting decision-support systems. Our goal is to deliver real-time, computationally
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of methods to fabricate and characterize test structures and devices incorporating graphene (single layer, bi-layer, and few layer) and stacked structures. Condensed matter physics; Graphene; Magneto-transport
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details of regulatory mechanisms for ERK1/2 is a timely and important goal. Structural, biochemical, and biophysical experiments carried out by Natalie Ahn's lab and others have established key aspects
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crystallography and spectroscopy are fundamental and imperative in the investigation and development of condensed matter sciences. We will widely use these methods to study the crystal structures of novel materials