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Tailorable spectral dispersion of copper-nickel 1D plasmonic crystals

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2017
IcETRAN2017_Obradov_i.pdf (959.6Kb)
Authors
Obradov, Marko
Jakšić, Zoran
Mladenović, Ivana
Vuković, Slobodan
Isić, Goran
Vasiljević-Radović, Dana
Lamovec, Jelena
Conference object (Published version)
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Abstract
Plasmonic nanocomposites are a new class of materials that offers unprecedented opportunities to tailor the optical response, including the possibility to design their spectral and spatial dispersion at will. This includes the optical parameters rarely or never met in nature, which opens a path toward plasmonic metamaterials and the wide new area of transformation optics. Responsible for such a unique behavior are bound surface modes propagating along interfaces between materials with different signs of relative dielectric permittivity known as surface plasmon polaritons (SPP). Most metals possess negative relative permittivity in optical range due to the existence of free electron plasma. However, they also exhibit large absorption losses and are bound to a given spectral range defined by the metal itself, which is the reason why alternative plasmonic materials are being actively sought upon. One possible way to extend the toolbox of available materials is to use altern...ating metal-dielectric or metal-metal layers – the one-dimensional plasmonic crystals. Typically gold and silver are used for the metal part due to their large conductance and generally favorable properties. In this contribution we perform an analysis of the suitability of the use of copper for plasmonic nanocomposites. Its oxidation, the main barricade towards its more widespread use in plasmonics, is avoided by combining it with nickel. We utilize ab initio analysis by 2D finite element modeling and realistic material parameters to assess different electromagnetic modes. Tailorability of the response is attained by simple changing of the Cu to Ni fill factor. The analyzed CuNi plasmonic crystals are convenient for simple, low cost biochemical sensors and superabsorbers.

Keywords:
Plasmonics; Heterometallics; Optical Multilayers; Biochemical sensors; Superabsorbers / Plasmonics / Heterometallics / Optical Multilayers / Biochemical sensors / Superabsorbers
Source:
Proceedings of 4th International Conference on Electrical, Electronics and Computing Engineering, IcETRAN 2017, June 05-08, Kladovo, Serbia, 2017, MOI 3.2., 1-5
Publisher:
  • Society for Electronics, Telecommunications, Computers, Automatic Control and Nuclear Engineering
Funding / projects:
  • Physics of Ordered Nanostructures and New Materials in Photonics (RS-171005)
  • Micro- Nanosystems and Sensors for Electric Power and Process Industry and Environmental Protection (RS-32008)
  • Fabrication and characterization of nano-photonic functional structrues in biomedicine and informatics (RS-45016)

ISBN: 978-86-7466-692-0

[ Google Scholar ]
Handle
https://hdl.handle.net/21.15107/rcub_cer_5711
URI
https://cer.ihtm.bg.ac.rs/handle/123456789/5711
Collections
  • Radovi istraživača / Researchers' publications
Institution/Community
IHTM
TY  - CONF
AU  - Obradov, Marko
AU  - Jakšić, Zoran
AU  - Mladenović, Ivana
AU  - Vuković, Slobodan
AU  - Isić, Goran
AU  - Vasiljević-Radović, Dana
AU  - Lamovec, Jelena
PY  - 2017
UR  - https://cer.ihtm.bg.ac.rs/handle/123456789/5711
AB  - Plasmonic nanocomposites are a new class of
materials that offers unprecedented opportunities to tailor the
optical response, including the possibility to design their spectral
and spatial dispersion at will. This includes the optical
parameters rarely or never met in nature, which opens a path
toward plasmonic metamaterials and the wide new area of
transformation optics. Responsible for such a unique behavior
are bound surface modes propagating along interfaces between
materials with different signs of relative dielectric permittivity
known as surface plasmon polaritons (SPP). Most metals possess
negative relative permittivity in optical range due to the existence
of free electron plasma. However, they also exhibit large
absorption losses and are bound to a given spectral range defined
by the metal itself, which is the reason why alternative plasmonic
materials are being actively sought upon. One possible way to
extend the toolbox of available materials is to use alternating
metal-dielectric or metal-metal layers – the one-dimensional
plasmonic crystals. Typically gold and silver are used for the
metal part due to their large conductance and generally
favorable properties. In this contribution we perform an analysis
of the suitability of the use of copper for plasmonic
nanocomposites. Its oxidation, the main barricade towards its
more widespread use in plasmonics, is avoided by combining it
with nickel. We utilize ab initio analysis by 2D finite element
modeling and realistic material parameters to assess different
electromagnetic modes. Tailorability of the response is attained
by simple changing of the Cu to Ni fill factor. The analyzed CuNi plasmonic crystals are convenient for simple, low cost
biochemical sensors and superabsorbers.
PB  - Society for Electronics, Telecommunications, Computers, Automatic Control and Nuclear Engineering
C3  - Proceedings of 4th International Conference on Electrical, Electronics and Computing Engineering,  IcETRAN 2017, June 05-08, Kladovo, Serbia
T1  - Tailorable spectral dispersion of copper-nickel 1D plasmonic crystals
IS  - MOI 3.2.
SP  - 1
EP  - 5
UR  - https://hdl.handle.net/21.15107/rcub_cer_5711
ER  - 
@conference{
author = "Obradov, Marko and Jakšić, Zoran and Mladenović, Ivana and Vuković, Slobodan and Isić, Goran and Vasiljević-Radović, Dana and Lamovec, Jelena",
year = "2017",
abstract = "Plasmonic nanocomposites are a new class of
materials that offers unprecedented opportunities to tailor the
optical response, including the possibility to design their spectral
and spatial dispersion at will. This includes the optical
parameters rarely or never met in nature, which opens a path
toward plasmonic metamaterials and the wide new area of
transformation optics. Responsible for such a unique behavior
are bound surface modes propagating along interfaces between
materials with different signs of relative dielectric permittivity
known as surface plasmon polaritons (SPP). Most metals possess
negative relative permittivity in optical range due to the existence
of free electron plasma. However, they also exhibit large
absorption losses and are bound to a given spectral range defined
by the metal itself, which is the reason why alternative plasmonic
materials are being actively sought upon. One possible way to
extend the toolbox of available materials is to use alternating
metal-dielectric or metal-metal layers – the one-dimensional
plasmonic crystals. Typically gold and silver are used for the
metal part due to their large conductance and generally
favorable properties. In this contribution we perform an analysis
of the suitability of the use of copper for plasmonic
nanocomposites. Its oxidation, the main barricade towards its
more widespread use in plasmonics, is avoided by combining it
with nickel. We utilize ab initio analysis by 2D finite element
modeling and realistic material parameters to assess different
electromagnetic modes. Tailorability of the response is attained
by simple changing of the Cu to Ni fill factor. The analyzed CuNi plasmonic crystals are convenient for simple, low cost
biochemical sensors and superabsorbers.",
publisher = "Society for Electronics, Telecommunications, Computers, Automatic Control and Nuclear Engineering",
journal = "Proceedings of 4th International Conference on Electrical, Electronics and Computing Engineering,  IcETRAN 2017, June 05-08, Kladovo, Serbia",
title = "Tailorable spectral dispersion of copper-nickel 1D plasmonic crystals",
number = "MOI 3.2.",
pages = "1-5",
url = "https://hdl.handle.net/21.15107/rcub_cer_5711"
}
Obradov, M., Jakšić, Z., Mladenović, I., Vuković, S., Isić, G., Vasiljević-Radović, D.,& Lamovec, J.. (2017). Tailorable spectral dispersion of copper-nickel 1D plasmonic crystals. in Proceedings of 4th International Conference on Electrical, Electronics and Computing Engineering,  IcETRAN 2017, June 05-08, Kladovo, Serbia
Society for Electronics, Telecommunications, Computers, Automatic Control and Nuclear Engineering.(MOI 3.2.), 1-5.
https://hdl.handle.net/21.15107/rcub_cer_5711
Obradov M, Jakšić Z, Mladenović I, Vuković S, Isić G, Vasiljević-Radović D, Lamovec J. Tailorable spectral dispersion of copper-nickel 1D plasmonic crystals. in Proceedings of 4th International Conference on Electrical, Electronics and Computing Engineering,  IcETRAN 2017, June 05-08, Kladovo, Serbia. 2017;(MOI 3.2.):1-5.
https://hdl.handle.net/21.15107/rcub_cer_5711 .
Obradov, Marko, Jakšić, Zoran, Mladenović, Ivana, Vuković, Slobodan, Isić, Goran, Vasiljević-Radović, Dana, Lamovec, Jelena, "Tailorable spectral dispersion of copper-nickel 1D plasmonic crystals" in Proceedings of 4th International Conference on Electrical, Electronics and Computing Engineering,  IcETRAN 2017, June 05-08, Kladovo, Serbia, no. MOI 3.2. (2017):1-5,
https://hdl.handle.net/21.15107/rcub_cer_5711 .

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