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Field
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covalent bonds within hair fibres, moving beyond current approaches that rely primarily on hydrogen bonding and electrostatic interactions. While these weaker interactions can provide temporary repair
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current approaches that rely primarily on hydrogen bonding and electrostatic interactions. While these weaker interactions can provide temporary repair, they are inherently fragile and often lost after
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performing photocatalytic production of a green fuel, hydrogen, and removal of the potent greenhouse gas nitrous oxide. Those reactions were driven by electrons supplied by robust, light-harvesting Carbon-Dots
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of exogeneous green hydrogen gas from electrolysis of water through carbon capture and utilisation (CCU) will further increase methane production and will facilitate upgrading of the produced gas. About the
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, such as oxygen or hydrogen evolution, dramatically affect the local environment pH. This phenomenon becomes a major source of complexity for understanding the long-term nanocatalyst behavior and the
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notably on geothermal energy and heat storage, carbon capture and storage, natural hydrogen, underground storage of energy vectors, and radioactive waste storage. This position will contribute to the R&D
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energy storage system utilizing hydrogen in the form of liquid organic hydrogen carriers (LOHCs), coupled with innovative biomass conversion. This approach enables the direct transfer of hydrogen from
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study the microstructure of nickel-based alloys used in turbine wheels — vital components for hydrogen-ready engines and future power technologies. Your work will feed directly into the development
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of robust novel hydrogenation catalysts as well as new, widely applicable photochemical tools. All projects have dual, applied and fundamental, character. Various new concepts in catalysis and photochemistry
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an innovative approach to transforming this constraint into an opportunity. The idea is to utilize the gases produced during electrochemical treatments (hydrogen, oxygen, and halogenated gases) using a micro