135 structures-"https:"-"https:"-"https:"-"https:"-"IMT---Atlantique" positions at NIST
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the synthesis-process-structure-property relationship for quantum solid state materials. References: Liang, et al., 2025. Real-time experiment-theory closed-loop interaction for autonomous materials science
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mechanical behavior of polymers from low impact speeds to ballistic speeds. We are particularly interested in the role of polymer architecture, such as network structure, backbone stiffness and side group
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heterodyne detection. Recent results from our group have shown that these structures are almost purely radiatively broadened at 9 K. We are soliciting proposals to extend this experimental method
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on the design, construction, and application of a suite of in situ measurement platforms for use with NIST’s state-of-the-art neutron and synchrotron X-ray scattering facilities [1], capable of interrogating
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of their spatial resolution and quantitative measurement. They are posed now to advance from benchmark tests on well-defined geometries and materials to structures and integrated devices of interest for nanoscale
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, to achieve fundamental understanding of the chemical and structural interactions governing the carbon capture processes. Research topics include: sorption materials, carbon mineralization, catalytic conversion
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correlations and prediction methods. The program will build on our existing efforts using Quantitative Structure-Property Relationship (QSPR) methodologies and modern machine learning methods (support vector
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to the design, construction, and operation of high-performance buildings that maintain good indoor air quality and use low levels of energy. Specifically, the goals of this research are to (1) develop methods
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the fundamental structure-property and processing-property relations that will enable these materials to provide the necessary performance in the wide spectrum of applications envisioned. For example, quantitative
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with stable isotopes such as 2 H, 13 C, 15 N, and 18 O is an important tool for structural and bioanalytical methods such as nuclear magnetic resonance (NMR), small angle neutron scattering (SANS), and