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significant optical losses at interfaces between materials or components. These constraints hinder the deployment of compact, high‑performance, and industrially competitive photonic systems. In this context
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the Faraday Institution, investigating degradation mechanisms in next generation Li-ion batteries. You will perform research into degradation reactions occurring at electrode-electrolyte interfaces in next
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relevant to high-field and high-temperature dielectric performance to inform the digital discovery of new polymers. Characterize materials, interfaces, and film morphology using microscopy and materials
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projects, publishing results in high-quality peer-reviewed venues, and contributing to the preparation of external research proposals. Duties may include: Conduct original research in cybersecurity
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motivated Postdoctoral Researcher (m/f/div) or exceptionally qualified PhD candidate (m/f/div) to join our team in the development of high-performance micro thermoelectric devices based on advanced
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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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Robert Weatherup, to join a major interdisciplinary project funded by the Faraday Institution, investigating degradation mechanisms in next generation Li-ion batteries. You will perform research
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materials. Create a new flame-retardant electrolyte for sodium-ion (Na-ion) batteries. The ultimate objective is to produce a high-performance hard carbon-based sodium-ion battery system, contributing
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the data from HEP experiments is strongly required Programming expertise in Python and either PyTorch or TensorFlow is required Experience using High-Performance Computers (HPCs) is preferred Ability
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that houses advanced 3T human and 9.4T preclinical MRI scanners, both equipped with ultra-high-performance gradient systems. MINIMUM REQUIREMENTS Education: Applicants must hold a doctoral degree, preferably a