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Field
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-funded collaborative research project SOCool, a completely novel approach to the fabrication of metal-supported solid oxide electrolysis cells (MS-SOECs) will be developed. The proposed cell concept is
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this PhD will address. This project will develop a direct ammonia solid oxide fuel cell (SOFC) technology for efficient and carbon-free heat and/or power generation. By using a novel catalyst design strategy
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fundamental and applied research and have a strong background in i) development of new materials based on nanotextured carbons or carbon/metal oxide for applications in the field of electrochemical energy
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the activity and stability of iridium oxide-based catalysts supported on various materials within a PEM electrolysis cell. Catalyst layers and membrane-electrode assemblies will be prepared and characterized in
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resistant electrode materials for use in either oxide ion conducting or proton conducting solid oxide fuel cells. The post holder will work closely with the computational team to analyse new candidate
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The Role Applications are invited for a Postdoctoral Research Associate position in the Department of Engineering, with a focus on advanced solid oxide fuel cell (SOFC) modelling, three-dimensional
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-chemistry, interface science, and solid-state chemistry. The recruited researcher will join the 'Energy Conversion' group, working in connection with ongoing activities on core materials for fuel cells and
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sustainability. This PhD project aims to develop new ionic conducting materials as next-generation membrane alternatives for fuel cell and electrolyser applications. Ceramic ion conductors present a promising
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high-performance storage systems for the energy transition. In doing so, we encompass a wide range of technologies, from oxide ceramic fuel cells to solid-state batteries, thermal barrier coatings
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develop novel materials and systems necessary to effectively manage renewable energy sources. 【Keywords】Hydrogen production,Water electrolysis,Electrochemistry,Catalytic chemistry,Spectroscopy,Solid-liquid