Enhanced optical transmission and Fano resonance through a nanostructured metal thin film

Artificial and engineered nanostructures expand the degrees of freedom with which one can manipulate the intricate interplay of light and matter. Certain nanostructural arrangements in the excited state enable the efficient electromagnetic coupling of propagating light with localized fields. Here, w...

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Bibliographic Details
Published inScientific reports Vol. 5; no. 1; p. 10393
Main Authors Xiao, Bo, Pradhan, Sangram K, Santiago, Kevin C, Rutherford, Gugu N, Pradhan, Aswini K
Format Journal Article
LanguageEnglish
Published England Nature Publishing Group 18.05.2015
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Summary:Artificial and engineered nanostructures expand the degrees of freedom with which one can manipulate the intricate interplay of light and matter. Certain nanostructural arrangements in the excited state enable the efficient electromagnetic coupling of propagating light with localized fields. Here, we demonstrate that light transmitted through a nanostructured metal thin film without any apertures can be significantly enhanced. Distinct asymmetric Fano resonances are observed in the zero-order transmission spectra using an incoherent light source. The transmission efficiency surpasses that of a metal thin film with the same area and thickness at the resonance maxima. The transmission minima and the sharp resonance maxima bear a strong resemblance to the extraordinary optical transmission observed in sub-wavelength nanohole array structures The resonance wavelength closely matches the nanostructural periodicity. The sensitivity of the resonances to the surrounding medium and the transmission efficiency demonstrate the potential for use in energy harvesting, imaging, optical processing and sensing applications.
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ISSN:2045-2322
2045-2322
DOI:10.1038/srep10393