350 information-security-"https:"-"https:"-"https:"-"https:"-"https:"-"Dr" positions at NIST
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301.975.2461 Description Our goal is to develop and apply new computational (molecular simulation) and theoretical (statistical mechanics and thermodynamics) methods to study complex fluids, with an emphasis
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properties such as electron-based spectroscopies, nanometer-scale imaging with energy filtering using a photoemission electron microscope (PEEM), and other optical measurements. Research is done in close
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The goal of metabolomics is to provide a detailed profile of the identity and concentration of metabolites in an organism at a particular point in time. Metabolomics is a relatively new discipline that
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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
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is focused on facilitating reproducibility, improving detection limits, and expanding the measurement capabilities of microfluidic control and sensing technologies. Research opportunities are available
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research to advance rational design for engineering biology. Of particular interest is the development of new approaches to measure, understand, predict, and control information, learning, function, and
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, metrology, and quantum information. Relevant reference examples as 2020: Kaufman et al., Science 345, 6194; Norcia et al., PRX 8, 041054; Norcia et al., Science 366, 6461 key words Quantum many-body systems
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include layered semiconductors and novel 2D materials. Research is done in close collaboration with other groups at NIST with expertise in complementary techniques and materials growth. key words Time
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edward.kwee@nist.gov 301.975.2618 Alexander W Peterson alexander.peterson@nist.gov 301.975.5665 Description Gene therapy is a rapidly growing field that utilizes viral vectors to deliver DNA or RNA to a
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. The composition explicit distillation curve method, developed at NIST, provides a unique approach to join fuel composition with the thermophysical properties. Of critical importance is the moiety family breakdown