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Field
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science and technology activities in the scientific area of Civil Engineering, within the scope of the project “INVATHERM – Development of thermal insulation materials based on invasive plants
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with experimental and computational partners in Germany and the United States. The goal is to fabricate candidate coatings and assess their performance under ion irradiation and high heat-flux / thermal loading
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: Characterization of sorbent/porous materials characterization e.g. nitrogen sorption (BET, BJH, NLDFT), breakthrough measurements, SEM, TEM, TGA, FTIR, NMR, thermal conductivity measurements Synthesis and/or shaping
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processes in non-thermal plasmas and how these plasmas interact with material surfaces. The successful candidate will investigate the dynamics of plasma propagation and the generation of reactive species
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techniques, thermal mapping, power consumption analysis, electromagnetic emission patterns, etc. These measurements will be conducted in combination with an accelerated aging protocol. 3. Analysis of the trade
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chemistry, chemical biology, biochemical and thermal reactions. Research at CBS is organized around several major areas, which aim to answer challenging industrial questions, from complex chemical and
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chemistry, chemical biology, biochemical and thermal reactions. Research at CBS is organized around several major areas, which aim to answer challenging industrial questions, from complex chemical and
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including thermal ionization mass spectrometer (TIMS) at Duke University, mentoring of junior graduate and undergraduate students in Vengosh Lab, as well as developing new research projects and submitting
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Associação do Instituto Superior Técnico para a Investigação e Desenvolvimento _IST-ID | Portugal | 26 days ago
to characterize chitosan extracted from Black Soldier Fly (BSF), Tenebrio molitor (TM), and Acheta domesticus (AD). Chitosan thermophysical properties, including thermal stability, decomposition, and glass
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with improved energetic efficiency (e.g., arXiv:2408.06418); Optimization of thermodynamic protocols: designing thermal machines that exploit collective quantum phenomena to achieve higher energy