Hyperbolic Optical Metamaterials from Shear‐Aligned Block Copolymer Cylinder Arrays

Hyperbolic metamaterials behave similarly to either metals or dielectrics depending on the polarization of incident light. This behavior is reflected in permittivity tensors having both negative and positive components, which leads to interesting optics such as negative refraction and super‐resolution imaging. To achieve this polarization‐dependent electromagnetic response, hyperbolic metamaterials require a strongly anisotropic nanostructure made from noble metals. Herein, a nanostructured array of aligned gold and silver nanocylinders that exhibit a strongly anisotropic optical response both in reflection and transmission are investigated. The plasmonic material is manufactured using films of aligned block copolymer (BCP) cylinders as template, where a uniform alignment is achieved by annealing in the presence of an external shear force. Metal deposition into a nanoporous polymer template resulted in free‐standing metal nanostructures consisting of a hexagonally packed in‐plane cylinder array supported by occasional interconnections between adjacent cylinders. 3D full‐wave simulations confirm the experimentally measured anisotropic response of the metallic nanocylinders and show that the interconnections between cylinders affect the optical response while maintaining the hyperbolic nature of the metamaterial. The large‐scale alignment of anisotropic BCP nanostructures provides useful templates for the fabrication of metal‐based optical materials with potential applications as polarizers, sensors, or angle‐dependent broadband absorbers.

Location
Deutsche Nationalbibliothek Frankfurt am Main
Extent
Online-Ressource
Language
Englisch

Bibliographic citation
Hyperbolic Optical Metamaterials from Shear‐Aligned Block Copolymer Cylinder Arrays ; volume:1 ; number:2 ; year:2020 ; extent:10
Advanced photonics research ; 1, Heft 2 (2020) (gesamt 10)

Creator
Kilchoer, Cédric
Abdelrahman, Doha
Abdollahi, S. Narjes
LaRocca, Ava A.
Steiner, Ullrich
Saba, Matthias
Gunkel, Ilja
Wilts, Bodo D.

DOI
10.1002/adpr.202000037
URN
urn:nbn:de:101:1-2022052707410770941854
Rights
Open Access; Der Zugriff auf das Objekt ist unbeschränkt möglich.
Last update
15.08.2025, 7:25 AM CEST

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