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The high conductivity improved by pre-treatment enabled AgNWs to become excellent transparent electrode materials especially at high transmittance.
NANOCOFC is a new approach for designing and developing of multi-functionalities for nanocomposite materials, especially at 300 600 °C.
First principles calculations play a significant role in developing and optimizing new energy storage and conversion materials especially at the nanoscale.
The in situ transmission electron microscopy provides a novel approach to uncover the dynamic deformation mechanisms in nanostructured materials, especially at the atomic scale.
It is expected that the present work will be useful for effective assessment of various deformation characteristics during processing of sintered materials, especially at high-speed.
The experimental results reveal the benefit of the sweep gas with water vapor, which is effective to increase the tritium release rate from ceramic breeder materials especially at comparatively lower temperatures.
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Differential degradation could possibly attribute a stressed state in the material, especially at the interfaces.
The presence of a catalytic layer of another material during the synthesis of the nanostructures may lead to contamination of the grown material, especially at the edges of the nanostructures.
Traditional silicon-based devices could not show desirable NIR photoresponse due to limitation of optical bandgap (1.12 eV) of silicon [1], and many attempts have been made to enhance the absorptance of silicon material, especially at NIR wavelengths [2 9].
The Li-doping also improves the diffusion behavior of Li-ion in electrode material especially at 300 K, which implies the promising rate capability of the device at room temperature when the anode material is doped utilizing Li element.
The results revealed that the introduction of an LC phase into the resin network can reduce creep strain and creep strain rate of the material, especially at elevated temperatures.
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