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of mm-wave and microwave components. To develop this program in oxide electronics, a successful applicant will have a solid background in programming (Matlab, Python, or equivalent). Experience with
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enable easier and more desirable direct processing of nanotube materials for applications such as printable electronics and photovoltaics. Characterizing the role of the specific dispersant polymers and
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biomanufacturing and personalized medicine. We are developing new electronics techniques that leverage the field effect, and optomechanical interferometric methods for the on-chip measurements of molecular
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name email phone Yaw S Obeng [email protected] 301.975.8093 Description We work in close collaboration with the electronics and ancillary industries on their long-term metrology needs. For example
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metamaterial control of light emission. We are also working on the design and fabrication of prototype nanostructure electronic devices such as FinFETs for applications in high power electronics. We welcome
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. Villarrubia [email protected] 301.975.3958 Description Scanning electron microscopy (SEM) is used for metrology of nanometer-scale features in semi-conductor electronics applications and for
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Materials; Surface Chemistry; Surface Characterization; Spectroscopy; Molecular Electronics Eligibility citizenship Open to U.S. citizens level Open to Postdoctoral applicants Stipend Base Stipend Travel
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and Vulnerabilities. (National Institute of Standards and Technology, Gaithersburg, MD), NIST Special Publication (SP), NIST SP 800-231. https://doi.org/10.6028/NIST.SP.800-231 [2] U.S. Patent
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as spin electronics and cancer therapy. These materials are studied using both unpolarized and polarized beam neutron scattering techniques including reflectivity, SANS (small angle neutron scattering
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Joel N. Ullom [email protected] 303.497.4408 Description For many measurement applications, the sensitivity of cryogenic instrumentation far surpasses that of conventional room temperature electronics