Antenna Design for 5G and Beyond

With the rapid evolution of the wireless communications, fifth-generation (5G) communication has received much attention from both academia and industry, with many reported efforts and research outputs and significant improvements in different aspects, such as data rate speed and resolution, mobilit...

Full description

Saved in:
Bibliographic Details
Sonstige:
Year of Publication:2022
Language:English
Physical Description:1 electronic resource (288 p.)
Tags: Add Tag
No Tags, Be the first to tag this record!
LEADER 05350nam-a2201165z--4500
001 993544832704498
005 20240112212754.0
006 m o d
007 cr|mn|---annan
008 202205s2022 xx |||||o ||| 0|eng d
035 |a (CKB)5680000000037637 
035 |a (oapen)https://directory.doabooks.org/handle/20.500.12854/81206 
035 |a (EXLCZ)995680000000037637 
041 0 |a eng 
100 1 |a Ojaroudi Parchin, Naser  |4 edt 
245 1 0 |a Antenna Design for 5G and Beyond 
260 |a Basel  |b MDPI - Multidisciplinary Digital Publishing Institute  |c 2022 
300 |a 1 electronic resource (288 p.) 
336 |a text  |b txt  |2 rdacontent 
337 |a computer  |b c  |2 rdamedia 
338 |a online resource  |b cr  |2 rdacarrier 
506 |a Open access  |f Unrestricted online access  |2 star 
520 |a With the rapid evolution of the wireless communications, fifth-generation (5G) communication has received much attention from both academia and industry, with many reported efforts and research outputs and significant improvements in different aspects, such as data rate speed and resolution, mobility, latency, etc. In some countries, the commercialization of 5G communication has already started as well as initial research of beyond technologies such as 6G.MIMO technology with multiple antennas is a promising technology to obtain the requirements of 5G/6G communications. It can significantly enhance the system capacity and resist multipath fading, and has become a hot spot in the field of wireless communications. This technology is a key component and probably the most established to truly reach the promised transfer data rates of future communication systems. In MIMO systems, multiple antennas are deployed at both the transmitter and receiver sides. The greater number of antennas can make the system more resistant to intentional jamming and interference. Massive MIMO with an especially high number of antennas can reduce energy consumption by targeting signals to individual users utilizing beamforming.Apart from sub-6 GHz frequency bands, 5G/6G devices are also expected to cover millimeter-wave (mmWave) and terahertz (THz) spectra. However, moving to higher bands will bring new challenges and will certainly require careful consideration of the antenna design for smart devices. Compact antennas arranged as conformal, planar, and linear arrays can be employed at different portions of base stations and user equipment to form phased arrays with high gain and directional radiation beams. The objective of this Special Issue is to cover all aspects of antenna designs used in existing or future wireless communication systems. The aim is to highlight recent advances, current trends, and possible future developments of 5G/6G antennas. 
546 |a English 
650 7 |a Technology: general issues  |2 bicssc 
650 7 |a History of engineering & technology  |2 bicssc 
653 |a double-fed slot antenna 
653 |a MIMO system 
653 |a mobile terminals 
653 |a polarization diversity 
653 |a UWB technology 
653 |a 5G 
653 |a future handsets 
653 |a modified PIFA 
653 |a multi-antenna system 
653 |a multi-band operation 
653 |a MIMO 
653 |a 5G mobile handsets 
653 |a dual-band antenna 
653 |a microstrip patch antenna 
653 |a millimeter-wave 
653 |a high gain 
653 |a transmitarray (TA) antenna 
653 |a metasurface (MS) 
653 |a PSO 
653 |a side-lobe level (SLL) reduction 
653 |a lens antenna 
653 |a negative refractive index 
653 |a multibeam 
653 |a beam scanning 
653 |a beyond-5G 
653 |a 6G 
653 |a interference alignment 
653 |a K-User MIMO 
653 |a OFDM 
653 |a wideband antenna 
653 |a MIMO antenna 
653 |a four-port wideband antenna 
653 |a substrate integrated waveguide (SIW) 
653 |a transmission zeros (TZs) 
653 |a metallic via 
653 |a coupling topology 
653 |a antenna array 
653 |a antenna measurements 
653 |a beam pattern 
653 |a beam steering 
653 |a equivalent circuit modelling 
653 |a transmitarray 
653 |a chirality 
653 |a dielectric resonator antennas 
653 |a metasurfaces 
653 |a antipodal Vivaldi antenna (AVA) 
653 |a millimeter wave 
653 |a compact 
653 |a 5G applications 
653 |a corrugations 
653 |a reconfigurable antennas 
653 |a reconfigurable parasitic layers 
653 |a antenna optimization 
653 |a antenna design 
653 |a nonlinear characterization 
653 |a behavioral modelling 
653 |a x-parameters 
653 |a PIN diode 
653 |a dielectric resonator antenna 
653 |a aperture coupled 
653 |a 26 GHz 
653 |a small cell 
653 |a active metamaterial antenna 
653 |a continuous tuning 
653 |a resonance blindness 
653 |a EM co-simulation 
653 |a nonlinear property 
653 |a phased array 
653 |a massive MIMO 
653 |a wideband array 
653 |a triangular grid 
776 |z 3-0365-3531-4 
776 |z 3-0365-3532-2 
700 1 |a Ojaroudi Parchin, Naser  |4 oth 
906 |a BOOK 
ADM |b 2024-01-14 00:25:25 Europe/Vienna  |f system  |c marc21  |a 2022-05-14 21:41:54 Europe/Vienna  |g false 
AVE |i DOAB Directory of Open Access Books  |P DOAB Directory of Open Access Books  |x https://eu02.alma.exlibrisgroup.com/view/uresolver/43ACC_OEAW/openurl?u.ignore_date_coverage=true&portfolio_pid=5337812360004498&Force_direct=true  |Z 5337812360004498  |b Available  |8 5337812360004498