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These materials exhibit structural features rather different from that of the well-known zirconia-based electrolytes.
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A new standard test material exhibiting structural anisotropy with respect to thermal transport is first conceptualised, designed and fabricated.
Porous nanostructured carbon materials exhibit unique structural features such as high surface area and excellent physicochemical stability and have been of significantly scientific and technological interest because of their vital importance in many energy related applications.
These vessels are not fully functional and exhibit structural abnormalities.
Dendrites often exhibit structural changes in response to local inputs.
Laser technologies can be successfully utilized for the production of carbon-nanostructured materials exhibiting fascinating structural and physical properties such as carbon nanotubes [1], carbon nanohorns [2], carbon nanofoams [3], or shell-shaped carbon nanoparticles [4].
These materials exhibit a higher level of structural tailorability, with size- and morphology-dependent properties.
These materials exhibit the exact characteristics (e.g., structural endurance and high oxygen redox capacity and exchange kinetics) required by the low temperature reverse water-gas shift chemical looping process.
These electrode materials exhibit very small percentage of volume change with change in Li+ concentration which accounts for excellent structural stability.
Amongst the panoply of chemical, physical, and biological properties that these materials exhibit, a comprehensive understanding of the mechanical properties is perhaps the most challenging as it involves connecting molecular level structural features to macroscopic mechanical behavior.
Among other EO properties, these materials exhibit voltage-dependent birefringence.
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