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The unique dependences of the solar energy harnessing ability on the geometries of the Si NW are disclosed.
The dependence of the solar energy harnessing ability on the height of the Si NWs has also been reported by several groups.
The solar energy loss caused by the reflection is calculated based on the reflectance spectra to characterize the solar energy harnessing ability of the Si NW array.
Our results clearly demonstrate that the solar energy harnessing ability of the Si NW array is intimately associated with the geometries of the NW.
Enormous efforts [9 23] have been devoted to study the influence of geometries on the solar energy harnessing ability of the semiconductor NW arrays.
Such unique features of the solar energy harnessing ability of the ordered Si NW array are worth to be further exploration.
The reflectance of the controlled periodic Si nanowire (NW) arrays is systematically explored, which characterizes the influence on the solar energy harnessing ability by the geometries of the NW.
To further clarify the influence of the NW geometries on the solar energy harnessing ability of the Si NW array, the solar energy loss (SEL) caused by the reflection of the Si NW array is calculated according to the Equation 1, SEL = ∫ 400 1000 I λ α λ dλ (1).
Science, they suggest, is actually a kind of institutionalized childhood, an attempt to harness abilities that evolved to be used by babies or young children.
The researchers harnessed this ability, growing fungi samples in pairs in petri dishes.
Abdolahad et al. then harnessed the ability of cells to bind and spread on nanostructures to create a biosensor with cells as a dielectric material.
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Justyna Jupowicz-Kozak
CEO of Professional Science Editing for Scientists @ prosciediting.com