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Field
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, or in the Department of Mechanical and Aerospace Engineering, which houses ongoing work in advanced additive manufacturing of polymer composites, multifunctional ceramics, and metallic laser powder bed
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founded in 1906 and named after its emphasis on the study of metals. Since then, our field has broadened to include all classes of materials from ceramics and polymers to semiconductors and biological
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materials, including polymers, metals, ceramics, and semiconductor materials. The team also emphasizes the development of advanced manufacturing methods that enable the transition of these materials to real
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catalysis, separation, energy generation, conversion and storage, Plasma Science and its applications, and organic optoelectronics intelligent and advanced polymers and materials Postdoctoral Career
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of length scales from small molecular units to long chained polymers, with even simple substances such as nitrogen or methane exhibiting complex phase behaviour. Methods to map this behaviour are well
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programme and research growth in this area. Ideal candidates will demonstrate a track record of impactful research contributions in one or more of the following key areas: Metallurgy, Ceramics, Polymer
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design, manufacture, and validate metamaterial-based protective structures. Key objectives include: Building a computational framework that integrates explicit dynamic simulations, constitutive models
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due to start in April 2026 . WORK PLAN: The candidate must complete a PhD in accordance with the following plan: Computational simulation of additive manufacturing of polymers Digital twin of additive
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catalysis, separation, energy generation, conversion and storage, Plasma Science and its applications, and organic optoelectronics intelligent and advanced polymers and materials. Postdoctoral Career
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. Students may choose a concentration in Polymers and Coatings or a focused Master's program in Polymers and Coatings Science. For more information about the Chemistry and Biochemistry Department, please see