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lead the development and application of advanced microscopy techniques, microfluidic approaches, and single-cell analysis methods to investigate quiescence at individual cell and population levels. Where
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Department is developing and applying electron microscopy methodologies for nanoscale and atomic-resolution characterization of soft functional materials and their interfaces using a synergy of materials
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transmission electron microscopy are essential. LanguagesENGLISHLevelGood LanguagesFRENCHLevelGood Additional Information Additional comments Job details The position is funded for a duration of 9 months and can
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can be found at https://postdoc.wustl.edu/prospective-postdocs-2/ . For more information on the Sibley Lab, please visit https://sites.wustl.edu/sibleylab . Trains under the supervision of a faculty
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evaluated by a professional credentialing service provider approved by the National Association of Credential Evaluation Services (NACES), which can be found at http://www.naces.org/ . This requisition has
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, including X-Ray diffraction, scanning electron microscope, atomic force microscopy Additional comments NA Website for additional job details https://emploi.cnrs.fr/Offres/CDD/UMR137-JULGRO0-024/Default.aspx
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science. Preferably you have a background in STM/STS, photoelectron spectroscopy (ARPES, XPS) or Atomic Force Microscopy (AFM). Preferably you have experience with Ultra High Vacuum sample preparation
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their structural and optical characterization by using atomic force microscopy (AFM), scanning electron microscopy (SEM), x-ray diffraction (XRD), and photoluminescence spectroscopy (PL). The research will be
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researchers whose expertise is complementary. Applicants may be primarily experimental or computational. We are especially interested in candidates who can cover a strong combination of skills (not necessarily
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The University of North Carolina at Chapel Hill | Chapel Hill, North Carolina | United States | about 1 month ago
-associated complications. We seek to discover new anti-HIV latency therapeutic targets that will ultimately lead to the eradication of HIV, including kick and kill, direct killing, and deep latency. Various