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Field
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–property–processing relationships relevant to high-field and high-temperature dielectric performance to inform the digital discovery of new polymers. Characterize materials, interfaces, and film morphology
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—exhibit strong responsiveness to environmental stimuli such as solvent composition, temperature, light, or electric fields. In this project, we aim to exploit this responsiveness to design multi-layer
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current sensors) Develop and characterize superconducting nanowire single-photon detectors (SNSPDs) using high kinetic inductance materials such as NbN, TiN, and NbTiN, targeting high detection efficiency
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chemical thermodynamics, kinetics, electrochemistry, and high-temperature chemical processes. Problem-solving skills, including the ability to identify technical challenges, develop innovative solutions, and
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Massachusetts Institute of Technology (MIT) | Cambridge, Massachusetts | United States | about 1 month ago
on the WEST tokamak at CEA/IRFM in France. Activities would include participation in the design, assembly, testing, installation, calibration and operation of a high-resolution imaging crystal spectrometer
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Massachusetts Institute of Technology | Cambridge, Massachusetts | United States | about 1 month ago
on the WEST tokamak at CEA/IRFM in France. Activities would include participation in the design, assembly, testing, installation, calibration and operation of a high-resolution imaging crystal spectrometer
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development of post-AM heat treatment. Supervise master’s and/or PhD students to a certain extent Possibility to engage in teaching at undergraduate/master’s level The position is meritorious for future roles
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scalable, cost-effective processes to efficiently remove atmospheric CO2. High-temperature ammonia separation: Creating novel high temperature separation technologies to make ammonia synthesis significantly
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these and to deduce fluxes of heat and material across the MTZ. The post holders will be responsible for compiling seismic data sets (focusing on surface-wave overtones and body-wave data including precursors
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. This project aims to quantitatively image the bulk structure and discontinuity topographies of the mantle transition zone (MTZ), to quantify trade-offs between these and to deduce fluxes of heat and material