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This composite material exhibits high specific capacity, good rate performance and excellent cycling performance.
The polyaniline-derivated NDC electroactive material exhibits high capacity of 404.0 F g−1 at 1.0 A g−1.
The resulting composite material exhibits high specific capacitance (2676.9 F g-1 at 0.5 A g-1) and excellent cycling stability.
The anode material exhibits high electrical conductivity values of 407 452 S cm−1 at 750 820 °C in pure H2.
The resulting material exhibits high minority carrier diffusion length gratefully to compensation but degrades upon illumination due to the activation of the boron oxygen defect.
The Fe3O4/GAs composite as an anode material exhibits high reversible capability and excellent cyclic capacity for lithium ion batteries (LIBs).
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The results reveal that SMATed material exhibits higher cyclic stress amplitude due to higher strength of the SMAT affected region.
However, it proved unsuitable for many applications, because devices made of the material exhibited high leakage currents at only moderately elevated temperatures.
The ZnO/Ni0.9Zn0.1O DSNCs, when utilized as gas sensing material, exhibited high sensitivity and selectivity towards xylene.
The as-synthesized In2O3 MCs, when utilized as gas sensing material, exhibited high sensitivity and selectivity towards ethanol vapor.
The resulting material exhibited high activity for various acid-catalyzed reactions and can be used repeatedly without deactivation.
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