Investigating the Optical Properties of a Laser Induced 3D Self-Assembled Carbon–Metal Hybrid Structure

Journal Article (2019)
Author(s)

Muhammad Abdullah Butt (Max Planck Institute for the Science of Light, Friedrich-Alexander-Universität Erlangen-Nürnberg)

Antonino Calà Lesina (University of Ottawa)

Martin Neugebauer (Max Planck Institute for the Science of Light, Friedrich-Alexander-Universität Erlangen-Nürnberg)

Thomas Bauer (TU Delft - QN/Kuipers Lab, University of Ottawa)

Lora Ramunno (University of Ottawa)

Alessandro Vaccari (Fondazione Bruno Kessler)

Pierre Berini (University of Ottawa)

Yuriy Petrov (St. Petersburg State University)

Denis Danilov (St. Petersburg Academic University)

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DOI related publication
https://doi.org/10.1002/smll.201900512 Final published version
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Publication Year
2019
Language
English
Bibliographical Note
Accepted Author Manuscript
Journal title
Small
Issue number
18
Volume number
15
Article number
1900512
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Abstract

Carbon-based and carbon–metal hybrid materials hold great potential for applications in optics and electronics. Here, a novel material made of carbon and gold–silver nanoparticles is discussed, fabricated using a laser-induced self-assembly process. This self-assembled metamaterial manifests itself in the form of cuboids with lateral dimensions on the order of several micrometers and a height of tens to hundreds of nanometers. The carbon atoms are arranged following an orthorhombic unit cell, with alloy nanoparticles intercalated in the crystalline carbon matrix. The optical properties of this metamaterial are analyzed experimentally using a microscopic Müller matrix measurement approach and reveal a high linear birefringence across the visible spectral range. Theoretical modeling based on local-field theory applied to the carbon matrix links the birefringence to the orthorhombic unit cell, while finite-difference time-domain simulations of the metamaterial relates the observed optical response to the distribution of the alloy nanoparticles and the optical density of the carbon matrix.

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