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, determination of the structure of a membrane-bound protein complex, and manipulation of membrane-bound protein structure. The bioreflectometry group collaborates with academic and government laboratories
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to investigate material behavior across different length scales, stress states, and temperatures. This research aims to provide new insights into the complex relationship between material structure and mechanical
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and the biologics are poorly understood. This research opportunity centers on advancing experimental measurement methods to quantify the structure formed between poly(organophosphazene) polyelectrolytes
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separation, energy converting biological processes, and signal transduction. However, despite their obvious importance, atomic structures have been determined for only a few dozen of these proteins because
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pool properties, material cooling rates, material grain structure, and the mechanical properties of bulk parts. These models attempt to resolve a variety of complex physics that occur during laser-metal
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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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electronics. New materials are continually being developed for electronic applications, and accurate measurements of the electromagnetic properties of these often complex new materials is critical both
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, economics, and all branches of science. Current concerns include the development and analysis of algorithms for the solution of problems of estimation, simulation and control of complex systems, and their
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shown that these structures are almost purely radiatively broadened at 9 K. We are soliciting proposals to extend this experimental method to investigate multi-exciton and charged exciton complexes. We
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aimed at reducing the fire hazard of and exposure of potentially harmful chemicals used in products and materials found in buidling contents and construction, fire fighter gear, and a wide variety of