Research of antenna complexes using chiral metamaterials and fractal geometry of radiators for MIMO systems
- Authors: Bespalov A.1, Buzov A.2, Klyuev D.1, Neshcheret A.2
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Affiliations:
- Povolzhskiy State University of Telecommunications and Informatics
- JSC «Samara Innovative Business Radio Systems»
- Issue: Vol 23, No 4 (2020)
- Pages: 97-110
- Section: Articles
- URL: https://journals.ssau.ru/pwp/article/view/8380
- DOI: https://doi.org/10.18469/1810-3189.2020.23.4.97-110
- ID: 8380
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Abstract
This article is devoted to the study of the possibilities of increasing spectral efficiency in MIMO systems by using antennas with substrates of biisotropic and bianisotropic chiral metamaterials and various types of fractal emitters, in particular, fractal structures in the form of a Sierpinski triangle, Koch and Gilbert curves, as well as a dipole triangular antenna of complex configuration – FRM. The spectral efficiency was calculated by using one of the variations of the Shannon formula, which includes a complete matrix of Z-parameters. In turn, this matrix was determined using the software package of electrodynamic modeling. It is shown that the use of such antennas with the fractal geometry of the emitters located on chiral substrates reduces the mutual influence between the emitters, and, in turn, increases the spectral efficiency in several frequency ranges compared to traditional solutions.
Keywords
About the authors
Andrey N. Bespalov
Povolzhskiy State University of Telecommunications and Informatics
Author for correspondence.
Email: nam@siprs.ru
Alexander L. Buzov
JSC «Samara Innovative Business Radio Systems»
Email: buzov@siprs.ru
Dmitry S. Klyuev
Povolzhskiy State University of Telecommunications and Informatics
Email: klyuevd@yandex.ru
Anatoly M. Neshcheret
JSC «Samara Innovative Business Radio Systems»
Email: neshceret_a@list.ru
References
- Gershman A.B., Sidiropoulos N.D. Space-Time Processing for MIMO Communications. Hoboken: John Wiley & Sons, 2006, 369 p.
- Telatar E. Capacity of multi-antenna Gaussian channels. European Transactions on Telecommunications, 1999, vol. 10, no. 6, pp. 585–595. DOI: https://doi.org/10.1002/ett.4460100604.
- Bespalov A.N. et al. Opportunities for increasing throughput in MIMO systems using metamaterial antennas. Radiotehnika, 2018, no. 4, pp. 87–91. (In Russ.)
- Bespalov A.N. et al. Microstrip antennas based on biisotropic and bianisotropic chiral metamaterials in MIMO systems. Radiotehnika, 2019, no. 3, pp. 5–11. (In Russ.)
- Neganov V.A., Osipov O.V. Reflective, Waveguiding and Radiating Structures with Chiral Elements. Moscow: Radio i svjaz’, 2006, 280 p. (In Russ.)
- Sihvola A.H. et al. Electromagnetic-Waves in Chiral and Bi-Isotropic Media. Boston: Artech House, 1994, 352 p.
- Buzov A.L. et al. Prospects for the use of metamaterials in new generation antennas. Physics of Wave Processes and Radio Systems, 2017, vol. 20, no. 3, pp. 15–20. URL: https://journals.ssau.ru/index.php/pwp/article/view/7078. (In Russ.)
- Hirvonen M., Sten J.C.-E. Power and Q of a horizontal dipole over a metamaterial coated conducting surface. IEEE Transactions on Antennas and Propagation, 2008, vol. 56, no. 3, pp. 684–690. DOI: https://doi.org/10.1109/TAP.2008.916937.
- Potapov A.A. Fractals in Radiophysics and Radar: Sample Topology. 2nd ed., rev. and add. Moscow: Universitetskaja kniga, 2005, 848 p. (In Russ.)
- Naryshkin M.I. Fractal antennas for base stations of branched corporate mobile radio networks. Antenny, 2017, no. 1, pp. 22–27. (In Russ.)
- Naryshkin M.I. Antennas for mobile base stations of mobile radio communication based on structures of complex configuration. Antenny, 2017, no. 2, pp. 14–21. (In Russ.)
- Parshin Ju.N., Komissarov A.V. The capacity of a MIMO telecommunication system in a changing spatial structure of a radio path with artificial multipath. Tsifrovaja obrabotka signalov, 2012, no. 1, pp. 50–55. URL: http://www.dspa.ru/articles/year2012/jour12_1/art12_1_9.pdf. (In Russ.)
- Sibille A., Oestges C., Zanella A. MIMO: From Theory to Implementation. Cambridge: Academic Press, 2011, 703 p.