Materials Map

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The Materials Map is an open tool for improving networking and interdisciplinary exchange within materials research. It enables cross-database search for cooperation and network partners and discovering of the research landscape.

The dashboard provides detailed information about the selected scientist, e.g. publications. The dashboard can be filtered and shows the relationship to co-authors in different diagrams. In addition, a link is provided to find contact information.

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The Materials Map is still under development. In its current state, it is only based on one single data source and, thus, incomplete and contains duplicates. We are working on incorporating new open data sources like ORCID to improve the quality and the timeliness of our data. We will update Materials Map as soon as possible and kindly ask for your patience.

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Naji, M.
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Andryieuski, Andrei

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Artifex University

in Cooperation with on an Cooperation-Score of 37%

Topics

Publications (42/42 displayed)

  • 2022Chemical Vapor-Deposited Graphene on Ultraflat Copper Foils for van der Waals Hetero-Assembly14citations
  • 2022Chemical Vapor-Deposited Graphene on Ultraflat Copper Foils for van der Waals Hetero-Assembly14citations
  • 2016Homogenization of metasurfaces formed by random resonant particles in periodical lattices25citations
  • 2016Homogenization of metasurfaces formed by random resonant particles in periodical lattices25citations
  • 2015Plasmonic and Photonic Modes Excitation in Graphene on Silicon Photonic Crystal Membranecitations
  • 2015Photonic and Plasmonic Guided Modes in Graphene-Silicon Photonic Crystals24citations
  • 2015Photonic and Plasmonic Guided Modes in Graphene-Silicon Photonic Crystals24citations
  • 2014Super-resolution near field imaging devicecitations
  • 2014Super-resolution near field imaging devicecitations
  • 2013Graphene Based Terahertz Absorber Designed With Effective Surface Conductivity Approachcitations
  • 2013Graphene Based Terahertz Absorber Designed With Effective Surface Conductivity Approachcitations
  • 2013Fabrication and characterization of transparent metallic electrodes in the terahertz domaincitations
  • 2013Fabrication and characterization of transparent metallic electrodes in the terahertz domaincitations
  • 2012Metamaterials modelling, fabrication, and characterisation techniquescitations
  • 2012Metamaterials modelling, fabrication, and characterisation techniquescitations
  • 2012Subwavelength terahertz imaging with graphene hyperlenscitations
  • 2012Subwavelength terahertz imaging with graphene hyperlenscitations
  • 2012Graphene wire medium: Homogenization and applicationcitations
  • 2012Graphene wire medium: Homogenization and applicationcitations
  • 2012Graphene hyperlens for terahertz radiation85citations
  • 2012Metamaterials modelling, fabrication and characterisation techniquescitations
  • 2012Metamaterials modelling, fabrication and characterisation techniquescitations
  • 2011Enhanced broadband optical transmission in metallized woodpiles6citations
  • 2011Enhanced broadband optical transmission in metallized woodpiles6citations
  • 2011Wave impedance retrieving via Bloch modes analysiscitations
  • 2011Wave impedance retrieving via Bloch modes analysiscitations
  • 2011Wave propagation in structured materials as a platform for effective parameters retrievingcitations
  • 2011Negative Index Materials and Plasmonic Antennas Based Nanocouplerscitations
  • 2010Enhanced broadband optical transmission in metallized woodpilescitations
  • 2010Enhanced broadband optical transmission in metallized woodpilescitations
  • 2010Optimisation of the electroless metal deposition technique for use in photonicscitations
  • 2010Optimisation of the electroless metal deposition technique for use in photonicscitations
  • 2010Controlled Ag electroless deposition in bulk structures with complex three-dimensional profiles12citations
  • 2010Controlled Ag electroless deposition in bulk structures with complex three-dimensional profiles12citations
  • 2009Isotropic metal deposition technique for metamaterials fabricationcitations
  • 2009Nested structures approach for bulk 3D negative index materials:[invited]citations
  • 20093D geometrically isotropic metamaterial for telecom wavelengthscitations
  • 20093D geometrically isotropic metamaterial for telecom wavelengthscitations
  • 2009Bulk metamaterials: Design, fabrication and characterizationcitations
  • 2009Isotropic metal deposition technique for metamaterials fabricationcitations
  • 2009Bulk metamaterials: Design, fabrication and characterization:[invited]citations
  • 2009Nested structures approach for bulk 3D negative index materialscitations

Places of action

Chart of shared publication
Caridad, José M.
2 / 5 shared
Pizzocchero, Filippo
4 / 4 shared
Tang, Peter T.
2 / 5 shared
Hone, James
4 / 10 shared
Sørensen Jessen, Bjarke
1 / 2 shared
Kling, Jens
2 / 8 shared
Malureanu, Radu
29 / 51 shared
Bøggild, Peter
4 / 46 shared
Petrone, Nicholas
2 / 3 shared
Whelan, Patrick Rebsdorf
1 / 12 shared
Gammelgaard, Lene
2 / 3 shared
Shivayogimath, Abhay
2 / 6 shared
Lavrinenko, Andrei V.
20 / 98 shared
Booth, Timothy
2 / 9 shared
Lavrinenko, Andrei
21 / 32 shared
Jessen, Bjarke S.
1 / 2 shared
Booth, Timothy J.
1 / 10 shared
Whelan, Patrick R.
1 / 12 shared
Petrov, Mihail
2 / 2 shared
Tretyakov, Sergei A.
2 / 5 shared
Hao, Yufeng
3 / 3 shared
Gu, Tingyi
3 / 3 shared
Hone, James C.
1 / 3 shared
Li, Yilei
3 / 3 shared
Wong, Chee Wei
3 / 6 shared
Heinz, Tony F.
3 / 11 shared
Low, Tony
3 / 4 shared
Booth, Tim
1 / 4 shared
Zalkovskij, Maksim
8 / 16 shared
He, Qiong
2 / 2 shared
Jepsen, Peter Uhd
6 / 46 shared
Song, Zhengyong
2 / 2 shared
Zhou, Lei
2 / 18 shared
Gritti, Claudia
2 / 3 shared
Ivinskaya, Aliaksandra
4 / 18 shared
Savastru, Dan
4 / 7 shared
Novitsky, Andrey
4 / 13 shared
Popescu, Aurelian
4 / 6 shared
Chigrin, Dmitry N.
3 / 3 shared
Kremers, Christian
2 / 2 shared
Chigrin, Dmitry
2 / 2 shared
Alabastri, A.
4 / 9 shared
Kiyan, R.
4 / 4 shared
Chichkov, B.
4 / 6 shared
Cheng, W.
4 / 4 shared
Ha, S.
3 / 4 shared
Kivshar, Y.
2 / 3 shared
Sukhorukov, A.
2 / 2 shared
Kivshar, Yu. S.
1 / 1 shared
Sukhorukov, A. A.
1 / 1 shared
Alabastri, Alessandro
2 / 7 shared
Chart of publication period
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2016
2015
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2012
2011
2010
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Co-Authors (by relevance)

  • Caridad, José M.
  • Pizzocchero, Filippo
  • Tang, Peter T.
  • Hone, James
  • Sørensen Jessen, Bjarke
  • Kling, Jens
  • Malureanu, Radu
  • Bøggild, Peter
  • Petrone, Nicholas
  • Whelan, Patrick Rebsdorf
  • Gammelgaard, Lene
  • Shivayogimath, Abhay
  • Lavrinenko, Andrei V.
  • Booth, Timothy
  • Lavrinenko, Andrei
  • Jessen, Bjarke S.
  • Booth, Timothy J.
  • Whelan, Patrick R.
  • Petrov, Mihail
  • Tretyakov, Sergei A.
  • Hao, Yufeng
  • Gu, Tingyi
  • Hone, James C.
  • Li, Yilei
  • Wong, Chee Wei
  • Heinz, Tony F.
  • Low, Tony
  • Booth, Tim
  • Zalkovskij, Maksim
  • He, Qiong
  • Jepsen, Peter Uhd
  • Song, Zhengyong
  • Zhou, Lei
  • Gritti, Claudia
  • Ivinskaya, Aliaksandra
  • Savastru, Dan
  • Novitsky, Andrey
  • Popescu, Aurelian
  • Chigrin, Dmitry N.
  • Kremers, Christian
  • Chigrin, Dmitry
  • Alabastri, A.
  • Kiyan, R.
  • Chichkov, B.
  • Cheng, W.
  • Ha, S.
  • Kivshar, Y.
  • Sukhorukov, A.
  • Kivshar, Yu. S.
  • Sukhorukov, A. A.
  • Alabastri, Alessandro
OrganizationsLocationPeople

document

3D geometrically isotropic metamaterial for telecom wavelengths

  • Malureanu, Radu
  • Andryieuski, Andrei
  • Lavrinenko, Andrei V.
Abstract

We present a new design for a unit cell with the cubic symmetry and sizes less than one sixth of the vacuum wavelength possessing a negative refractive index in the IR region. The main challenges in designing and fabricating metamaterials nowadays are in obtaining isotropic electric and magnetic responses keeping in the same time the cell dimensions within the effective medium approximation. Several approaches have been made to develop such a structure in the microwave region [1, 2], nevertheless, there is still a lack of structures to be used in the IR and visible diapasons. Since the dimension of the unit cell is not infinitely small, certain geometrical constraints have to be fulfilled to obtain an isotropic response of the material [3]. These conditions and the metal behaviour close to the plasma frequency increase the design complexity. Our unit cell is composed of two main parts. The first part generates the electric response, thus providing the negative real part of permittivity in the desired spectral range. The usual way is to utilize a set of metallic wires, so called diluted metal that exhibits a Drude-like behaviour. Our study shows that this behaviour is obtainable if the wires are arranged in a cage-like structure. For the magnetic response we use metallic plates forming an open cube located inside the “cage”. For this topology the plates can be thought of as capacitors in a resonant LC circuit [4]. By adjusting the resonant circuit frequency in the IR range a double negative response is obtained in a certain bandwidth. The proposed unit cell has the cubic point group of symmetry and being repeatedly placed in space can effectively reveal isotropic optical properties. We use the CST commercial software to characterise the “cube-in-cage” structure. Reflection and transmission spectra are shown in Fig.1a. The effective refractive index is retrieved accordingly to the standard algorithm [5] (see Fig.1b). After several cycles of naïve optimizations, the refractive index reaches -2.4 at 1.55μm (ca. 192.5THz). The maximum FOM in the band, where Re(n) <0 is 2.4 at 1.54μm (ca. 195.2THz). At this wavelength the refraction index is equal to -1.44. These values together with the effective cubic symmetry of the unit cell entitle us to assume the high potential of the suggested design as a constitutive block for an isotropic, relatively low-loss, metamaterial in the near IR region.

Topics
  • impedance spectroscopy
  • laser emission spectroscopy
  • forming
  • isotropic
  • wire
  • metamaterial
  • liquid chromatography