Chiral optical response of planar and symmetric nanotrimers enabled by heteromaterial selection
arXiv:1601.01900 · doi:10.1038/ncomms13117
Abstract
Chirality is an intriguing property of certain molecules, materials or artificial nanostructures, which allows them to interact with the spin angular momentum of the impinging light field. Due to their chiral geometry, they can distinguish between left- and right-hand circular polarization states or convert them into each other. Here, we introduce a novel approach towards optical chirality, which is observed in individual two-dimensional and geometrically mirror-symmetric nanostructures. In this scheme, the chiral optical response is induced by the chosen heterogeneous material composition of a particle assembly and the corresponding resonance behavior of the constituents it is built from, which breaks the symmetry of the system. As a proof of principle, we investigate such a structure composed of individual silicon and gold nanoparticles both experimentally as well as numerically. Our proposed concept constitutes a novel approach for designing two-dimensional chiral media tailored at the nanoscale.
References in corpus (3)
Cited by in corpus (9)
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- Controlling the broadband enhanced light chirality with L-shaped dielectric metamaterials
- Macroscopic Magneto-Chiroptical Metasurfaces
- Mirror-Symmetric Heterogeneous Resonant Nanostructures: Extrinsic Chirality and Spin-Polarized Scattering
- Lattice-plasmon induced asymmetric transmission in two-dimensional chiral arrays