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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.
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The large surface-to-volume ratio endows metal nanoparticles with high activity.
The large surface-to-volume ratio of small magnetic nanoparticles increases surface energy and, thus, enhancing particle aggregation.
The better photoresponse of the thin film with x = 100% could be attributed to the enhanced light absorption and surface-state trapping due to the larger surface-to-volume ratio [27, 28].
However, the significant decrease of zinc in smaller ferrite particles is mainly attributed to their large surface-to-volume ratio.
The larger surface-to-volume ratio would thus contribute to an elevated cluster thermoelastic response.
The excellent electrochemical properties could be attributed to the large surface area and mesoporous structure.
The enhanced OSC of the core/shell nanoparticles was mainly attributed to the larger surface.
Since the large surface to volume ratio of nanowire, surface plays important role to determine its properties [10].
In addition, if it is the large surface to volume ratio that enables growth of metastable NWs, will the structure be maintained under large radial overgrowth, where the surface to volume ratio decreases?
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