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The excellent electrochemical properties could be attributed to the large surface area and mesoporous structure.
The enhanced sensitivity is attributed to the large surface area presented by the interior of the nanotube assemblies.
These properties are attributed to the large surface area of the porous structure and the natural BSA layer acting as a biocompatible support.
The superior electrode reaction is attributed to the large surface area (~ 1.7 times larger) due to the 3-D hexagonal cathodic interlayer.
This improvement can be mainly attributed to the large surface area of nano-silica particles, which has pozzolanic and filler effects on the cementitious matrix.
Such high sensitivity was attributed to the large surface area of the highly dispersed nanoparticles for electrocatalytic reaction and the fast electron transfer in the TiO2NTs electrode.
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This could be attributed to the large surface-to-volume ratio exhibited by SiNWs.
The lower T of In2O3 NPs in the visible region is attributed to the large surface-to-volume ratio of the structure of the NPs compared to more compact nanostructured films.
Since this enhancement cannot be solely attributed to the larger surface area provided by the rectangular z-pins, optical microscopy was used to investigate the interface between the z-pins and the surrounding laminate.
The better HER performance of the as-prepared hollow Rh nanoparticles could be attributed to the larger surface area than commercial Rh nanoparticles, which could provide more active sites and therefore improve the electrocatalytic performance.
The enhanced OSC of the core/shell nanoparticles was mainly attributed to the larger surface.
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