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The strategies used in this study could provide new insight into the design of g-C3N4 based materials with high photocatalytic activity, and present potential for the treatment of Cr VI /2,4-DCP or other mixed pollutants in wastewater.
Although high surface areas are important for hydrogen storage by adsorption on solids, it would appear that it is essential that not only the physical, but also the chemical, properties of the adsorbents have to be considered in the quest for carbon based materials, with high hydrogen storage capacities.
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Nanostructured cobalt sulfide based materials with rational design are attractive for high-performance lithium-ion batteries.
Polymer nanoparticle composites have demonstrated enhanced mechanical elasticity and high conductivity, but require higher filler content when compared to nanowire and nanotube based materials with similar conductivities.
Therefore, optimizing the SnO2-based materials with high performance is quite urgent.
This is particularly interesting for the development of porous cement-based materials with high technical performance.
The study also provides an approach for design and synthesis of carbon-based materials with high supercapacitor behaviors.
Tremendous efforts have been devoted to replace commercial graphite anode (372 mAh g−1) by group IV elements (Si, Ge, Sn) based-materials with high capacities in lithium-ion batteries (LIBs).
These all information is highly important for researcher looking to achieve pyrochlore based phosphor materials with high quantum yield.
The results may be of interest for studying the relaxation of stress in the DLC bilayer films and can be used in advancing the development of DLC based engineering materials with high mechanical properties.
To use modified clay with higher efficiency, it was consequently designed as composite based materials.
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