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By X. Jiang

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2011). Transformation optics using Graphene, Science 332(6035): 1291–1294. , Kong, J. & Palacios, T. (2009). Graphene frequency multipliers, IEEE Electron Device Lett. 30: 547–549. 2 Electrodynamical Analysis of Open Lossy Metamaterial Waveguide and Scattering Structures L. Nickelson, S. Asmontas, T. Gric, J. Bucinskas and A. Bubnelis State Research Institute Center for Physical Sciences and Technology, Vilnius, Lithuania 1. Introduction Large stream of articles devoted to the study of metamaterial waveguide and metamaterial scattering (reflecting) structures points that there is a need for development devices possessing unique characteristics, as multifunctionality, reconfigurability, certain frequency bandwidth, ability to operate at high-powers and high-radiation conditions.

1962). Microwave Ferrites and Ferrimagnetics, McGraw-Hill. , Jenkins, K. , Small, J. , Farmer, D. B. & Avouris, P. (2009). Operation of graphene transistors at gigahertz frequencies, Nano Lett. 9: 422–426. Lindell, I. V. (1996). Methods for electromagnetic field analysis, IEEE Press. , Martín, F. & Sorolla, M. (2008). Metamaterials with Negative Parameters: Theory, Design and Microwave Applications, John Wiley & Sons. Mayorov, A. , Gorbachev, R. , Morozov, S. , Ponomarenko, L. , Novoselov, K. , Taniguchi, T.

I. general theory and simple applications to magnetic and conduction problems, J. Phys. Soc. Japan 12(6): 570–586. Lax, B. & Button, K. J. (1962). Microwave Ferrites and Ferrimagnetics, McGraw-Hill. , Jenkins, K. , Small, J. , Farmer, D. B. & Avouris, P. (2009). Operation of graphene transistors at gigahertz frequencies, Nano Lett. 9: 422–426. Lindell, I. V. (1996). Methods for electromagnetic field analysis, IEEE Press. , Martín, F. & Sorolla, M. (2008). Metamaterials with Negative Parameters: Theory, Design and Microwave Applications, John Wiley & Sons.

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