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Planetary health education and planetary health literacy in midwifery curricula in Germany : a document analysis of module handbooks
Datenlücken? Wir doch nicht! : Typische Einwände zu fehlender Datengerechtigkeit in der Verkehrsplanung und was wir darauf antworten können
Investigation of Uptake and Detoxification Mechanisms of Thioarsenates in Different Species : Evolution of Mechanisms Providing Arsenic Tolerance
Changes in natural 15N abundance highlight warming-induced stimulation of soil nitrate losses by coupled nitrification–denitrification in an old-growth montane forest
NMR-spektroskopische Untersuchungen der Adsorptionsprozesse in porösen Funktionsmaterialien mittels hyperpolarisiertem 129Xe
Extracting Formal Process Model Information from Natural Language Text Descriptions using Machine Learning
Ytterbium silicate-based environmental barrier coatings with hafnia via polymer-derived ceramic technology
Investigation of mechanical properties and transverse crack onset of thin-ply carbon-fiber composites in ambient and cryogenic conditions with varying fiber types
Membrane-Electrolyte System Studies for Aqueous Redox Flow Reactors
Electrochemical flow reactors are promising for electrochemistry at scale. Reactants are flowed continuously through typically porous electrodes where redox occurs, and ions transport through the electrolyte and typically at least one ion exchange membrane to provide current in the electrochemical circuit and balance charge. Ion exchange membranes are made of charged polymers that take up solvent to create ionically conductive pathways while blocking bulk mixing of adjacent electrolyte solutions. This thesis examines a crucial interface in electrochemical flow reactors, where the membrane and contacting electrolyte interact and exchange chemical species, and we find that the interaction of membrane and electrolyte governs the structure and transport of the membrane phase, which affects device scale performance. In redox flow batteries, the membrane must block crossover of reactants while enabling high conductivity. A combination of reactant size and charge effects influence permeation rates through charged membranes, with charge exerting especially strong influence under dilute conditions. The overall concentration and composition of the battery electrolyte influences the membrane hydration and hence transport, and we use conclusions from a systematic study of these effects to design crossover-free membrane-electrolyte systems with both commercial and novel membranes. In bipolar membranes, we find that the composition of impure strong electrolytes affects the local composition at the bipolar junction, which determines open circuit voltage and polarization behavior. Finally, we involve a series of ion exchange membranes including a bipolar membrane in a redox electrodialysis process for pH-driven separations, and untangle the concentration- and current-dependent membrane transport phenomena that limit the process efficiency.Engineering and Applied Sciences - Engineering Science