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to join the fight against PFAS – the so-called "forever chemicals" threatening our water sources. Sponsored by Anglian Water , this hands-on experimental project will explore advanced adsorption treatments
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(Yu et al.), as many substances can adsorb to their surfaces, leading to localized concentration hotspots. However, many questions remain—particularly concerning the adsorption of PFAS to microplastics
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grand-canonical DFT, treating the electrochemical potential explicitly and the solvent implicitly. A part of the mechanistic study, related to the adsorption/desorption of reactants and products, will be
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phenomenon where hydrogen atoms permeate storage materials, compromising their structural integrity. The research will create a multi-layered, self-healing coating that will limit hydrogen adsorption by
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create a multi-layered, self-healing coating that will limit hydrogen adsorption by the alloy and extend the lifespan of hydrogen storage vessels. This advanced coating will be applied to the inner walls
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analysis, UV-Vis and fluorescence spectroscopy, nitrogen adsorption–desorption isotherms at 77 K, thermogravimetry (TGA), perfilometry and electrical measurements, also including knowledge in data
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of electron microscopy imaging and spectroscopy to reveal the structure–property relationships that govern molecular adsorption mechanisms. This interdisciplinary project is fully funded by DTU’s PhD grant
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, there is no consensus on the adsorption mechanisms of these molecules on the metallic surfaces. In this PhD project we will use state-of-art molecular simulation methods [2,3] to clarify the adsorption and
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pūtaiao Māori at the interface. Pūtaiao Māori PhD project: ‘Weaving adsorptive power into harakeke for heavy metal removal’ with Dr Ben Yin (University of Canterbury) Application process: To apply, please
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chemical strategies to generate and detect chirality is the adsorption of chiral coatings onto achiral surfaces. As such coatings are generally poor conductors of electricity, this strategy has had limited