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conformation and dynamics in the one-phase region of oppositely charged polyelectrolyte solutions. Systems under investigation include polyelectrolytes of novel chain architecture (multi-arm star and block
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RAP opportunity at National Institute of Standards and Technology NIST State Resolved THz and Ultraviolet Studies of Polypeptide Structure and Dynamics Location Physical Measurement Laboratory
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Nuclear Magnetic Resonance (NMR) and Magnetic Resonance Imaging (MRI) are key techniques used in the biological and medical fields, there is a growing use of these technologies in industrial settings
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critical to a variety of soft material applications ranging from sustainability to impact mitigation. The polymer chemistry and structure of these entangled materials are essential to defining
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scaled up to handle large numbers of samples in massively parallel, low-cost analysis systems. Before such systems can be realized, the electromagnetic response of biochemical samples must be understood in
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data, spin dynamics code to simulate magnetic resonance measurements, field agile NMR and MRI, improved micro-MRI, MRI as a radiation dosimetry tool. This research will involve work on a preclinical
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essential to many biological functions; however, it is still not clear how the bilayer structure, dynamics and functionalities are correlated. Our understanding is in part limited by experimental challenges
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characterize complex fluids and their interaction with other matters. However, measurements require interpretation that is aided by computational fluid dynamics (CFD) and computational fluid particle dynamics
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, internal dynamics, materials physics and chemistry is of primary importance in determining the processing, performance and viability of advanced ceramic components such as relevant to solid oxide or hydrogen
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of failure strengths are needed to ensure reliability and maximize performance. We use numerous modeling approaches to explore the mechanical and electrical behavior of deforming nanoscale systems. Current