Publications of the Research Group Computational Photonics

Prof. Dr. Antonio Calà Lesina

Dynamic Modulation of Coupled Plasmon Resonances in Antimony-Doped Tin Oxide Nanorod Metamaterial by Charge Carrier Injection

Authored by

Thomas Herzog, Atefeh Habibpourmoghadam, Nele Pannewitz, Yaşar Krysiak, Irene Morales, Sonja Locmelis, Antonio Calà Lesina, Sebastian Polarz

Abstract

Coupled plasmon resonances of adjacent particles in densely packed nanorod metamaterials can introduce extraordinary optical features, like cavity resonance modes. These modes, being commonly realized in metallic metamaterials, can be exploited for plasmonic sensing or optical modulation, due to strong optical and electrical field enhancement in the cavities. However, modulation of plasmon resonances in metallic nanostructures is limited due to their intrinsically high charge carrier concentration. We introduce a new metamaterial based on metal oxides, respectively an array composed of doped tin oxide nanorods featuring cavity resonance modes. By means of numerical simulations, the optical response of the fabricated plasmonic metamaterial is calculated and compared with the experimental findings in order to understand and clarify the nature of the optical modes. Moreover, dynamic modulation of the optical response is demonstrated by the electrochemical injection of electrons into the nanorods, thus paving the way to electro-optical modulation of such metamaterials.

Details

Organisation(s)
Institute of Inorganic Chemistry
PhoenixD: Photonics, Optics, and Engineering - Innovation Across Disciplines
Hannover Centre for Optical Technologies (HOT)
Institute of Transport and Automation Technology
Type
Article
Journal
Nano letters
Volume
25
Pages
8628–8635
No. of pages
8
ISSN
1530-6984
Publication date
28.05.2025
Publication status
Published
Peer reviewed
Yes
ASJC Scopus subject areas
Bioengineering, General Chemistry, General Materials Science, Condensed Matter Physics, Mechanical Engineering
Electronic version(s)
https://doi.org/10.1021/acs.nanolett.5c01485 (Access: Open )