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to the design, fabrication, and characterization of superconducting devices based on high kinetic inductance materials. This position offers a unique opportunity to help build a new research capability with
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to substantially advance this new qubit platform by realizing high-fidelity two-qubit gates. The postdoc will design single electron qubit devices, fabricate them in CNM cleanroom, and characterize them in CNM
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The overarching focus of the postdoc position and effort is on advancing the understanding of materials at high pressure-temperature conditions, and in particularly across the solid-melt transition
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, and metal matrices. Design and optimize composite fabrication routes using densification techniques such as high-temperature sintering and spark plasma sintering. Investigate processing-structure
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models for high-temperature structural materials with applications in nuclear reactors and other energy systems. The candidate will collaborate with ANL staff to review, validate, and enhance methods
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The overarching focus of the postdoc position and effort is on advancing the understanding of materials at high pressure-temperature conditions, and in particularly across the solid-melt transition
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. As part of a multidisciplinary team spanning multiple Argonne divisions, you will contribute to the design, fabrication, and characterization of superconducting devices based on high kinetic inductance
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High Energy Physics Division, the successful candidate will contribute to the design, fabrication, and characterization of superconducting devices based on microstrip-coupled TES technology, with
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interfacial chemistry under synthesis conditions and during high-temperature, high-voltage, or high-rate operation Significant experience in evaluating the thermal stability and safety of cathode materials and
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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