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Finally, some perspectives on the geometry concept for material designs, theoretical calculations for performance prediction, and modern in situ TEM techniques for uncovering electrochemical mechanisms are discussed.
In order to develop mixed protonic and electronic conductors, we proposed a novel concept for material design that enables to control partial conductivities by fabricating solid solutions of protonic and electronic conductors.
MYRRHA is an MTR, based on the ADS concept, for material and fuel research, for studying the feasibility of transmutation of Minor Actinides and Long-Lived Fission Products arising from radioactive waste reprocessing and finally for demonstrating at a reasonable power scale the principle of the ADS.
MYRRHA is a MTR, based on the ADS concept, for material and fuel research, for studying the feasibility of transmutation of Minor Actinides and Long-Lived Fission Products arising from radioactive waste reprocessing and finally for demonstrating at a reasonable power scale the principle of the ADS.
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The primary long-term research goal is to formulate concepts for material performance beyond present capability to enable new approaches to highly optimized and multifunctional structural designs.
This chapter discusses the needs-oriented and the seeds-oriented concepts for materials research, development, and application.
Lowering the operation temperature of solid oxide fuel cells to the range of 400 600 °C has generated new concepts for materials choice, interfacial design and electrode microstructures.
This article summarizes the recent progresses on the development of high-performance supercapacitors based on carbon nanomaterials and provides various rational concepts for materials engineering to improve the device performance for a large variety of potential applications, ranging from consumer electronics through wearable optoelectronics to hybrid electric vehicles.
The findings should hold potential for direct applications, but even more as a concept for future material design.
Using the Analytic Network Process (ANP), this article aims at presenting a new concept for multicriteria material selection by means of allowing feedback and interactions within and between sets of design criteria and alternatives.
Defect engineering in metal organic frameworks (MOFs) is an exciting concept for tailoring material properties, which opens up novel opportunities not only in sorption and catalysis, but also in controlling more challenging physical characteristics such as band gap as well as magnetic and electrical/conductive properties.
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