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In contrast to the CP materials, the NPC materials exhibit higher surface areas.
The developed nanohybrid materials exhibit higher catalytic activity and electrical conductivity compared with those of Pt/graphene CEs.
The 3DOM β-Bi2O3 materials exhibit higher specific capacities and better capacity retention than conventional β-Bi2O3 nanoparticles as anode materials for Li-ion batteries.
Remarkably, the NiCo2O4 materials exhibit higher electrocatalytic activity, lower overpotential, better stability and greater tolerance compared to those of NiO and Co3O4 materials synthesized by the same procedure.
As an active hybrid supercapacitor electrode material, the active composite materials exhibit higher electrochemical performance than either pure MoS2 or pure Co3O4.
The as-prepared nanostructured materials exhibit higher photocatalytic activity than bare TiO2 in the treatment of synthetic produced water containing high salinity levels and different compositions of recalcitrant dissolved organic matter.
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The materials exhibit high electrophotographic photosensitivities and low residual potentials.
These materials exhibit high stiffness, hardness, and acid resistance and can be fabricated as fully mineralized membranes or coatings over uneven surfaces including native tissues.
The host materials exhibit high glass-transition temperatures (231 310 °C) and high triplet energy levels (2.61 2.73 eV).
The materials exhibit high glass transition temperatures (Tg) of 134 °C and 139 °C, respectively.
The resultant Pt-loaded materials exhibit high catalytic activity for the oxidation of CO even at loading levels as low as approximately 0.05 mg Pt/cm2.
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