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Triple-helical nanowires by tomographic rotatory growth for chiral photonics. | LitMetric

AI Article Synopsis

  • - Three-dimensional helical chiral metamaterials can effectively manipulate circularly polarized light, but their effectiveness is hindered by a lack of full rotational symmetry, affecting performance across various applications.
  • - The introduction of complex intertwined structures, like triple-helical nanowires, can enhance the optical properties of these materials, allowing for the integration of chirality and isotropy.
  • - The engineered triple-helical nanowires exhibit impressive optical characteristics, with up to 37% circular dichroism in the visible range and a high signal-to-noise ratio, paving the way for advanced chiral photonic devices in optical circuits.

Article Abstract

Three dimensional helical chiral metamaterials resulted in effective manipulation of circularly polarized light in the visible infrared for advanced nanophotonics. Their potentialities are severely limited by the lack of full rotational symmetry preventing broadband operation, high signal-to-noise ratio and inducing high optical activity sensitivity to structure orientation. Complex intertwined three dimensional structures such as multiple-helical nanowires could overcome these limitations, allowing the achievement of several chiro-optical effects combining chirality and isotropy. Here we report three dimensional triple-helical nanowires, engineered by the innovative tomographic rotatory growth, on the basis of focused ion beam-induced deposition. These three dimensional nanostructures show up to 37% of circular dichroism in a broad range (500-1,000 nm), with a high signal-to-noise ratio (up to 24 dB). Optical activity of up to 8° only due to the circular birefringence is also shown, tracing the way towards chiral photonic devices that can be integrated in optical nanocircuits to modulate the visible light polarization.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC4374152PMC
http://dx.doi.org/10.1038/ncomms7484DOI Listing

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