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the intended mechanism of action for the therapeutic, where the live cells may build new tissue or may release factors that induce tissue regeneration. Thus, there is a need to be able to reliably measure cell
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use state-of-the-art materials characterization capabilities to correlate local microstructures (before and after post-build thermal-mechanical processing) with location-specific, in situ thermal
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external stimuli from charge screening to pressure. In particular we are interested in correlating the membrane mechanical properties with their dynamical responses and functional activity. Our primary tools
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; and (2) experiments devoted to studies of quantum-state engineering and entanglement with application to quantum-information processing, quantum simulation, spectroscopy, and tests of quantum mechanics
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studies reported. Our ongoing research is aimed at understanding the mechanism of E. coli, yeast, and mammalian cell adaptation to growth in the presence of heavy isotopes, and to use this knowledge
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301.975.8517 Description The National Fire Research Laboratory at the NIST has expanded its fire research facility to enable simultaneous thermal (20 MW fire) and mechanical loading of multi-story buildings
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@nist.gov 301.975.5954 Description Research opportunities are available to advance the measurement of fluid flow, airspeed, liquid density, and volume as well as the measurement and quantum mechanical
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Description Molecular modeling (i.e., Monte Carlo and molecular dynamics methods) are becoming computationally-accessible for large-scale simulations of various thermophysical and mechanical properties
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(1) development of nanoscale characterization techniques to measure mechanical, chemical, and rheological properties of microscopic volume elements with nanoscale spatial resolution using atomic force
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the optical, mechanical, and electrical systems used in these experiments are welcome, and research projects can be formulated across a tremendous breadth of precision measurement activities. key words Watt