412 application-forms "https:" "https:" "https:" "Stanford University" positions at NIST
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measurement to support a DARPA program on “Tailorable Composite Feedstock and Forming”. This project will involve dc to 110 GHz complex permittivity and permeability characterization with on-wafer techniques
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303.497.4740 Description Our project has been developing single photon detectors and sources for use in a variety of applications requiring light at the faintest levels. We are currently involved in
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303.497.4740 Description We are investigating methods of creating new quantum states of light such as Schrodinger cat states, NOON states, and Fock states. These new states have a variety of applications
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NIST only participates in the February and August reviews. Nanoporous solids such as zeolites and metal-organic frameworks have wide applications in gas separation and storage, and have recently
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storage relies on permanently porous materials (such as activated carbon, MOFs, or zeolites), certain "non-porous" organic molecular crystals exhibit a remarkable ability to form cocrystals with small gas
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manufacturing of metal components through laser powder bed fusion have been increasingly embraced across a variety of industries and applications. But, broader adoption of this manufacturing technology—especially
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Description Applied optimization and simulation form an area of engineering that sits between mathematics and computer science. They include computational tools used to solve important problems in engineering
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Description Combining organic monolayers with semiconductor surfaces is of interest for many differing applications including molecular electronics, sensors, and bio-electronics. Monolayers on semiconductor
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control, new and improved applications, and data modelling and analysis to build a comprehensive measurement science and services portfolio for the Isotope Metallomics community. Opportunities exist
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assemble a wide variety of dye molecules on to nanotube surfaces. The atomic lattice of a SWCNT is expected to exert strong orienting force on the adsorbed dye molecules, thus making it possible to control