TY - JOUR
T1 - Broadband Enhanced Chirality with Tunable Response in Hybrid Plasmonic Helical Metamaterials
AU - Kilic, Ufuk
AU - Hilfiker, Matthew
AU - Ruder, Alexander
AU - Feder, Rene
AU - Schubert, Eva
AU - Schubert, Mathias
AU - Argyropoulos, Christos
N1 - Funding Information:
This work was partially supported by the National Science Foundation under award number DMR 1808715, Air Force Office of Scientific Research under award number FA9550‐18‐1‐0360, Nebraska Materials Research Science and Engineering Center under award number DMR 1420645, Swedish Knut and Alice Wallenbergs Foundation supporting grant titled ‘Wide‐bandgap semi‐conductors for next generation quantum components', and American Chemical Society/Petrol Research Fund. R.F. acknowledges the German Research Foundation (DFG) award FE 1532/1‐1. C.A. acknowledges partial support by the Office of Naval Research Young Investigator Program (ONR YIP) under award number N00014‐19‐1‐2384. M.S. acknowledges the University of Nebraska Foundation and the J. A. Woollam Foundation for financial support.
Publisher Copyright:
© 2021 Wiley-VCH GmbH
PY - 2021/5/17
Y1 - 2021/5/17
N2 - Designing broadband enhanced chirality is of strong interest to the emerging fields of chiral chemistry and sensing, or to control the spin orbital momentum of photons in recently introduced nanophotonic chiral quantum and classical optical applications. However, chiral light-matter interactions have an extremely weak nature, are difficult to control and enhance, and cannot be made tunable or broadband. In addition, planar ultrathin nanophotonic structures to achieve strong, broadband, and tunable chirality at the technologically important visible to ultraviolet spectrum still remain elusive. Here, these important problems are tackled by experimentally demonstrating and theoretically verifying spectrally tunable, extremely large, and broadband chiroptical response by nanohelical metamaterials. The reported new designs of all-dielectric and dielectric-metallic (hybrid) plasmonic metamaterials permit the largest and broadest ever measured chiral Kuhn's dissymmetry factor achieved by a large-scale nanophotonic structure. In addition, the strong circular dichroism of the presented bottom-up fabricated optical metamaterials can be tuned by varying their dimensions and proportions between their dielectric and plasmonic helical subsections. The currently demonstrated ultrathin optical metamaterials are expected to provide a substantial boost to the developing field of chiroptics leading to significantly enhanced and broadband chiral light-matter interactions at the nanoscale.
AB - Designing broadband enhanced chirality is of strong interest to the emerging fields of chiral chemistry and sensing, or to control the spin orbital momentum of photons in recently introduced nanophotonic chiral quantum and classical optical applications. However, chiral light-matter interactions have an extremely weak nature, are difficult to control and enhance, and cannot be made tunable or broadband. In addition, planar ultrathin nanophotonic structures to achieve strong, broadband, and tunable chirality at the technologically important visible to ultraviolet spectrum still remain elusive. Here, these important problems are tackled by experimentally demonstrating and theoretically verifying spectrally tunable, extremely large, and broadband chiroptical response by nanohelical metamaterials. The reported new designs of all-dielectric and dielectric-metallic (hybrid) plasmonic metamaterials permit the largest and broadest ever measured chiral Kuhn's dissymmetry factor achieved by a large-scale nanophotonic structure. In addition, the strong circular dichroism of the presented bottom-up fabricated optical metamaterials can be tuned by varying their dimensions and proportions between their dielectric and plasmonic helical subsections. The currently demonstrated ultrathin optical metamaterials are expected to provide a substantial boost to the developing field of chiroptics leading to significantly enhanced and broadband chiral light-matter interactions at the nanoscale.
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U2 - 10.1002/adfm.202010329
DO - 10.1002/adfm.202010329
M3 - Article
AN - SCOPUS:85100999582
SN - 1616-301X
VL - 31
JO - Advanced Functional Materials
JF - Advanced Functional Materials
IS - 20
M1 - 2010329
ER -