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Improved broadband and omnidirectional light absorption in silicon nanopillars achieved through gradient mesoporosity induced leaky waveguide modulation

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dc.contributor.author Karadan, Prajith
dc.contributor.author Anappara, Aji. A.
dc.contributor.author Moorthy, V. H. S.
dc.contributor.author Narayana, Chandrabhas
dc.contributor.author Barshilia, Harish C.
dc.date.accessioned 2017-01-24T06:17:35Z
dc.date.available 2017-01-24T06:17:35Z
dc.date.issued 2016
dc.identifier.citation Karadan, P.; Anappara, A. A.; Moorthy, V. H. S.; Narayana, C.; Barshilia, H. C., Improved broadband and omnidirectional light absorption in silicon nanopillars achieved through gradient mesoporosity induced leaky waveguide modulation. Rsc Advances 2016, 6 (110), 109157-109167 http://dx.doi.org/10.1039/c6ra20467h en_US
dc.identifier.citation RSC Advances en_US
dc.identifier.citation 6 en_US
dc.identifier.citation 110 en_US
dc.identifier.issn 2046-2069
dc.identifier.uri https://libjncir.jncasr.ac.in/xmlui/10572/2074
dc.description Restricted Access en_US
dc.description.abstract Metal assisted chemical etching in combination with nanosphere lithography is a low cost fabrication method to produce Si nanopillars (SiNPLs) with controlled size, periodicity and high aspect ratio on a large scale. These SiNPLs show a refractive index gradient condition from top to bottom of the SiNPLs due to the presence of inhomogeneous mesoporous structures. Here, for the first time we report the omnidirectional and polarization insensitive light coupling through mesoporosity induced waveguiding in SiNPLs. The optimized sample shows a minimum reflectance of <4% over a broad range of angles of incidence 8-48 degrees. The inhomogeneous mesoporous structures on the top of SiNPLs act like a three dimensional grating to couple the light into waveguide modes and made headway for the omnidirectional light absorption. By using angle resolved reflectance spectra and angle dependent Raman scattering, we confirmed that the inhomogeneous porosity plays a significant role in the omnidirectional light trapping, especially in the lower wavelength region, where the nanopillar absorption dominates. Finite difference time domain (FDTD) simulations have been performed to examine the omnidirectional light absorption theoretically and to find the leaky waveguide modes associated with the SiNPLs. This work focuses on the porosity induced fundamental light trapping in SiNPLs, which is highly desired in the design of photonic and optoelectronic devices. en_US
dc.description.uri http://dx.doi.org/10.1039/c6ra20467h en_US
dc.language English en
dc.language.iso English en_US
dc.publisher Royal Society of Chemistry en_US
dc.rights @Royal Society of Chemistry, 2016 en_US
dc.subject Chemistry en_US
dc.subject Nanosphere Lithography en_US
dc.subject Nanowire Arrays en_US
dc.subject Nanostructures en_US
dc.subject Fabrication en_US
dc.subject Photovoltaics en_US
dc.subject Devices en_US
dc.subject Photoluminescence en_US
dc.subject Platform en_US
dc.title Improved broadband and omnidirectional light absorption in silicon nanopillars achieved through gradient mesoporosity induced leaky waveguide modulation en_US
dc.type Article en_US


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