DocumentCode :
2856
Title :
Dual-Layer EBG-Based Miniaturized Multi-Element Antenna for MIMO Systems
Author :
Ghosh, Sudip ; Thanh-Ngon Tran ; Tho Le-Ngoc
Author_Institution :
Dept. of Electr. & Comput. Eng., McGill Univ., Montreal, QC, Canada
Volume :
62
Issue :
8
fYear :
2014
fDate :
Aug. 2014
Firstpage :
3985
Lastpage :
3997
Abstract :
A dual-layer electromagnetic band-gap (EBG) mushroom structure is proposed in this paper. Based on the concept of slow-wave propagation, this structure can reduce the size of multi-element microstrip patch antennas (MPAs) by 61%. While the mushroom inner layer aids in the antenna miniaturization, the more compact upper layer acts as a band-stop filter further reducing the mutual coupling between the miniaturized patch antenna elements, which is otherwise not possible for a single-layer EBG structure. Various 2- and 4-element miniaturized MPAs are proposed for 2.5-GHz band applications, with antenna elements closely spaced at 0.5λ and low mutual coupling levels in the range of -28 dB to -50 dB. Furthermore, the achievable multiple-input-multiple-output (MIMO) channel capacities of these miniaturized multi-antennas are analyzed using the Kronecker channel model and tested in various propagation scenarios like the anechoic chamber, reverberation chamber and indoor. It is observed that the miniaturized MPAs can provide significant gains in MIMO capacity in all the signal scattering environments and are close to the theoretical limit of i.i.d. Rayleigh fading.
Keywords :
MIMO communication; Rayleigh channels; anechoic chambers (electromagnetic); band-stop filters; fading channels; microstrip antennas; photonic band gap; wireless channels; EBG mushroom structure; Kronecker channel model; MIMO capacity; MIMO channel capacities; MIMO systems; MPA; Rayleigh fading; anechoic chamber; antenna miniaturization; band stop filter; dual layer EBG; indoor; miniaturized multielement antenna; miniaturized patch antenna elements; multielement microstrip patch antennas; multiple-input-multiple-output channel capacities; mushroom inner layer; mutual coupling; reverberation chamber; signal scattering environments; slow wave propagation concept; Antenna measurements; Antennas; MIMO; Metamaterials; Mutual coupling; Periodic structures; Dual-layer EBG; MIMO capacity; MPA; miniaturization; mutual coupling; propagation environment;
fLanguage :
English
Journal_Title :
Antennas and Propagation, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-926X
Type :
jour
DOI :
10.1109/TAP.2014.2323410
Filename :
6814808
Link To Document :
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