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Field
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• Design, execute, and interpret experiments to investigate molecular mechanisms of circadian nutritional compensation in fungal and mammalian systems. • Develop and optimize experimental protocols in
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to): Radiochemistry of small molecule molecular imaging probes to interrogate tumor biology and predict response to therapy. Optimize and characterize imaging agents for preclinical and translational cancer studies
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smectite, sepiolite, and layered double hydroxide. -Summarize the MD data to find the optimal mineralogy properties need to maximize the binding efficiencies of the minerals for the toxins. -Summarize
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-driven catalytic systems and/or electrochemical analysis (e.g., GC-FID, cyclic voltammetry, electrochemical workstation) Strong experimental design skills, including optimization of material synthesis
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to develop and optimize protocols for various ‘omic techniques (single cell transcriptomics, proteomics, etc.) and other techniques for assaying protein function in non-model organisms at different life stages
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, optimize, and test advanced materials that will accelerate the deployment of higher performance nuclear energy systems. As part of our research team, you will evaluate accelerated testing methods (in-situ
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, with a focus on arboviral diseases (e.g., dengue or Oropouche viruses). Other projects include improving risk assessment, optimizing surveillance system design, and developing and evaluating mitigation
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Department of Chemical and Biological Engineering at Princeton University. The position is in the broad area of renewable energy systems synthesis, analysis, and optimization. The goal of the project is to
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Required Knowledge, Skills, and Abilities Preferred Qualifications Experience with process design/synthesis/optimization and TEA. Experience with relevant tools (e.g., Aspen Plus, SuperPro Designer
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Required Knowledge, Skills, and Abilities Preferred Qualifications Experience with process design/synthesis/optimization and TEA. Experience with relevant tools (e.g., Aspen Plus, SuperPro Designer