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Review isolation techniques of the MIMO antennas for Sub-6

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Warianty tytułu
PL
Przegląd metod I technik izolacji w antenach MIMO
Języki publikacji
EN
Abstrakty
EN
The MIMO antenna is at the core of the wireless technologies currently available. Designing MIMO antennas on a limited space requires different approaches to reduce mutual coupling, otherwise, efficiency, envelope correlation coefficients, diversity gain, radiation patterns, gain and isolation will be greatly affected. Various isolation techniques have been introduced in the past five years in the previous literature to improve the performance of MIMO antennas. This review paper shows an extensive thorough reported of the envelope correlation coefficient, efficiency, Isolation, size, number of ports and isolation techniques in compact MIMO antennas to various bands
PL
W artykule przedstawiono różne techniki izolacji w antenach MIMO o małej powierzchni. Analizowano współczynnik obwiedni, skuteczność, techniki izolacji, wymiary, liczbę portów.
Rocznik
Strony
1--7
Opis fizyczny
Bibliogr. 121 poz., rys., tab.
Twórcy
  • Faculty of Electronics and Computer Engineering, Universiti Teknikal Malaysia Melaka (UTeM), 76100 Durian Tunggal, Melaka, Malaysia
  • Faculty of Electronics and Computer Engineering, Universiti Teknikal Malaysia Melaka (UTeM), 76100 Durian Tunggal, Melaka, Malaysia
  • Faculty of Electronics and Computer Engineering, Universiti Teknikal Malaysia Melaka (UTeM), 76100 Durian Tunggal, Melaka, Malaysia
Bibliografia
  • [1] A. M. Ibrahim, I. M. Ibrahim, and N. A. Shairi, “Compact MIMO Slot Antenna of Dual-Bands for LTE and 5G Applications,” Int. J. Adv. Sci. Technol., 2019. 28, (13), pp. 239–246.
  • [2] A. M. Ibrahim, I. M. Ibrahim, and N. A. Shairi, “Compact MIMO Slots Antenna Design with Different Bands and High Isolation for 5G Smartphone Applications,” Baghdad Sci. J., 2019. 16, (4), pp. 1093–1102.
  • [3] H. Alsariera et al., “Compact CPW-fed broadband circularly polarized monopole antenna with inverted L-shaped strip and asymmetric ground plane,” Prz. Elektrotechniczny, 2020, 96, (4), pp. 53–56.
  • [4] A. M. Ibrahim, I. M. Ibrahim, and N. A. Shairi, “Compact MIMO Antenna with High Isolation for 5G Smartphone Applications,” J. J. Eng. Sci. Technol. Rev., 2019. 12, (6), pp. 121–125.
  • [5] A. M. Ibrahim, I. M. Ibrahim, and N. A. Shairi, “Design a Compact Wide Bandwidth of a Printed Antenna using Defected Ground Structure,” J. Adv. Res. Dyn. Control Syst, 2019. 11, (02), pp. 1065–1076.
  • [6] H. Alsariera, Z. Zakaria, A. A. M. Isa, S. Alani, M. Y. Zeain, and H. Alsariera, “Simple broadband circularly polarized monopole antenna with two asymmetrically connected U-shaped parasitic strips and defective ground plane,” TELKOMNIKA, 2020. 18, (3), pp. 1169–1175.
  • [7] H. Alsariera et al., “New CPW-fed Broadband Circularly Polarized Planar Monopole Antenna Based on a Couple of Linked Symmetric Square Patches,” Int. J. Microw. Opt. Technol., 2020, 1, (2), pp. 95–103.
  • [8] S. Chouhan, D. K. Panda, M. Gupta, and S. Singhal, “Multiport MIMO antennas with mutual coupling reduction techniques for modern wireless transreceive operations: A review,” Int. J. RF Microw. Comput. Eng., 2018. 28, (2), pp. 1–15.
  • [9] I. Nadeem and D. Y. Choi, “Study on Mutual Coupling Reduction Technique for MIMO Antennas,” IEEE Access, 2019. 7,(3) pp. 563–586.
  • [10] T. K. Roshna, U. Deepak, V. R. Sajitha, and K. Vasudevan, “A Compact UWB MIMO Antenna with Reflector to Enhance Isolation,” IEEE Trans. Antennas Propag., 2015. 4, (c), pp. 157–160.
  • [11] G. Srivastava and A. Mohan, “Compact MIMO Slot Antenna for UWB Applications,” IEEE Antennas Wirel. Propag. Lett., 2016.15,(1), pp. 1057–1060.
  • [12] L. Liu, S. W. Cheung, and T. I. Yuk, “Compact MIMO Antenna for Portable UWB Applications with Band-Notched Characteristic,” IEEE Trans. Antennas Propag., 2015. 2, (c), pp. 1–6
  • [13] M. S. Khan, A.-D. Capobianco, M. F. Shafique, 2 Aftab Naqvi Bilal Ijaz, and B. D. Braaten, “Elements, Isolation Enhancement of A Wideband MIMO Antenna Using Floating Parasitic,” Microw. Opt. Technol. Lett., 2015. 57, (7), pp. 1677–1682.
  • [14] A. Moradikordalivand, T. A. Rahman, C. Y. L. Ebrahimi, and S. Ebrahimi, “Dual-polarized MIMO antenna system for WiFi and LTE wireless access point applications,” Int. J. Commun. Syst., 2015. 30, (1), p. e2898.
  • [15] A. Moradikordalivand, C. Y. Leow, T. A. Rahman, S. Ebrahimi, and T. H. Chua, “Wideband MIMO antenna system with dual polarization for WiFi and LTE applications,” Int. J. Microw. Wirel. Technol., 2016. 8, (3), pp. 643–650.
  • [16] M. S. Khan, A. Capobianco, A. Iftikhar, R. M. Shubair, E. Anagnostou, and B. D. Braaten, “Ultra-compact dual-polarised UWB MIMO antenna with meandered feeding lines,” IET Microwaves, Antennas Propag., 2017.7, (5),pp. 997–1002.
  • [17] K. Ding, C. Gao, D. Qu, and Q. Yin, “Compact Broadband MIMO Antenna with Parasitic Strip,” IEEE Antennas Wirel. Propag. Lett., 2017. 16, (c) pp. 2349–2353.
  • [18] M. Bilal, R. Saleem, H. H. Abbasi, M. F. Shafique, and A. K. Brown, “An FSS-Based Nonplanar Quad-Element UWB-MIMO Antenna System,” IEEE Antennas Wirel. Propag. Lett., 2017. 16,. (c), pp. 987–990.
  • [19] Y. H. Qian and Q. X. Chu, “A pattern-reconfigurable water loaded MIMO antenna,” Microw. Opt. Technol. Lett., 2017. 59, (7), pp. 1608–1613.
  • [20] H. S. Singh, R. Upadhyay, and R. M. Shubair, “Free space and user proximity analysis of octaband monopole MIMO/diversity antenna for modern handset applications,” Int. J. RF Microw. Comput. Eng., 2018.53,(10), pp. 1–13.
  • [21] N. O. Parchin et al., “Eight-Element Dual-Polarized MIMO Slot Antenna System for 5G Smartphone Applications,” IEEE Access,2019. 7,(53), pp. 15612–15622.
  • [22] S. Chouhan, D. K. Panda, and V. S. Kushwah, “Modified Circular Common Element Four-Port Multiple-Input-Multiple Output Antenna Using Diagonal Parasitic Element,” Int. J. RF Microw. Comput. Eng., 2019. 29, (2), pp. 1–8.
  • [23] M. El Ouahabi, A. Zakriti, M. Essaaidi, A. Dkiouak, and H. Elftouh, “A Miniaturized Dual-Band MIMO Antenna with Low Mutual Coupling for Wireless Applications,” Prog. Electromagn. Res. C, 2019. 93,(3), pp. 93–101.
  • [24] J. Ghimire, K. W. Choi, and D. Y. Choi, “Bandwidth Enhancement and Mutual Coupling Reduction Using A Notch and A Parasitic Structure In A UWB-MIMO Antenna,” Int. J. Antennas Propag., 2019. 53,(6), pp. 1–4.
  • [25] A. Moradi, R. Ngah, and M. Khalily, “Polarized Diversity Compact Planar MIMO Antenna for Wireless Access Point Applications,” Prog. Electromagn. Res. C,. 2019.91,(2), pp. 115–127.
  • [26] N. Nie, X. Yang, and B. Wang, “A Compact Four-Element Multiple-Input-Multiple-Output Antenna with Enhanced Gain and Bandwidth,” Microw. Opt. Technol. Lett., 2019. 61,(7), pp. 1828–1834.
  • [27] A. C. J. Malathi and D. Thiripurasundari, “Review on Isolation Techniques in MIMO Antenna Systems,” Indian J. Sci. Technol., 2016, 9, (9), pp. 1–5.
  • [28] L. Zhao and K. Wu, “A Dual-Band Coupled Resonator Decoupling Network for Two Coupled Antennas,” EEE Trans. Antennas Propag., 2015. 63, (7), pp. 2843–2850.
  • [29] R. Xia, S. Qu, S. Member, P. Li, Q. Jiang, and Z. Nie, “An Efficient Decoupling Feeding Network for Microstrip Antenna Array,” IEEE Antennas Wirel. Propag. Lett., 2015. 225, (c), pp. 1–4.
  • [30] C. H. Wu, C. L. Chiu, and T. G. Ma, “Very Compact Fully Lumped Decoupling Network for a Coupled Two-Element Array,” IEEE Antennas Wirel. Propag. Lett., 2016.15,(3), pp. 158–161.
  • [31] Y. Zhang and P. Wang, “Single Ring Two-Port Mimo Antenna for LTE Applications,” Electron. Lett., 2016, 52,(12), pp. 9–10.
  • [32] D. Wu, S. W. Cheung, Q. L. Li, and T. I. Yuk, “Decoupling Using Diamond-Shaped Patterned Ground Resonator for Small MIMO Antennas,” IET Microwaves, Antennas Propag., 2017, 11, (2), pp. 177–183.
  • [33] H. Meng and K. L. Wu, “An LC Decoupling Network for Two Antennas Working at Low Frequencies,” IEEE Trans. Microw. Theory Tech., 2017. 65, (7), pp. 2321–2329.
  • [34] P. Cheng, D. Sun, P. Wang, and P. Gao, “A Dual-Band MIMO Antenna Using A Passive Circuit for Isolation Enhancement,” Prog. Electromagn. Res. Lett., 2017. 71, (11), pp. 117–123.
  • [35] G. Srivastava, A. Mohan, A. Chakraborty, and W. Bengal, “A Compact Multidirectional UWB MIMO Slot Antenna with High,” Microw. Opt. Technol. Lett, 2017. 59, ( 2), pp. 243–248.
  • [36] D. W. Kim and S. Nam, “Systematic Design of a Multiport MIMO Antenna with Bilateral Symmetry Based on Characteristic Mode Analysis,” IEEE Trans. Antennas Propag., 2018. 66, (3), pp. 1076–1085.
  • [37] C. F. Ding, X. Y. Zhang, S. Member, C. D. Xue, C. Sim, and S. Member, “Novel Pattern-Diversity-Based Decoupling Method and its Application to Multi-Element MIMO Antenna,” IEEE Trans. Antennas Propag., 2018. 22, (c), pp. 1–5.
  • [38] P. Liu, D. Sun, P. Wang, and P. Gao, “A Compact Dual-Band MIMO Antenna with High Isolation for WLAN Applications,” Eur. Microw. Conf. EuMC, 2018. 74, (5), pp. 1125–1128.
  • [39] N. K. Kiem and D. N. Chien, “A Transmission Line Decoupling Technique For Enhancement of Port Isolation of Dual-Band MIMO Antennas,” J. Electromagn. Waves Appl., 2018. 32, (10), pp. 1195–1211.
  • [40] A. Zhao, S. Member, and Z. Ren, “Size Reduction of Self Isolated MIMO Antenna System for 5G Mobile Phone Applications,” IEEE Antennas Wirel. Propag. Lett., 2018.5,(c), pp. 1–7.
  • [41] S. Chaudhuri, R. S. Kshetrimayum, and R. K. Sonkar, “High Inter-Port Isolation Dual Circularly Polarized Slot Antenna with Split-Ring Resonator Based Novel Metasurface,” AEU - Int. J. Electron. Commun., 2019. 107,(4), pp. 146–156.
  • [42] B. Niu and J. Tan, “Compact Self-Isolated MIMO Antenna System Based on Quarter-Mode SIW Cavity,” Electron. Lett., 2019. 55, (10), pp. 5–6.
  • [43] J. Park, S. Member, and M. Rahman, “Isolation Enhancement of Wide-Band MIMO Array Antennas Utilizing Resistive Loading,” IEEE Access, 2019. 7,(65) pp. 81020–81026.
  • [44] A. Zhao, “Multiple-input and multiple-output antenna system with self-isolated antenna element for fifth-generation mobile terminals,” Microw Opt Technol Lett., 2019. 5, (3) pp. 20–27.
  • [45] A. M. Ibrahim, I. M. Ibrahim, and N. A. Shair, “A Compact Sextuple Multi-Band Printed Monopole Antenna,” Opcion, 2018, 86,(6), pp. 1448–1467.
  • [46] A. M. Ibrahim, I. M. Ibrahim, and N. A. Shairi, “A compact quad bands-notched monopole antenna for ultra-wideband wireless communication,” Religación, 2019. 53, (9), pp. 1689–1699.
  • [47] A. C. J. Malathi and D. Thiripurasundari, “Review on Isolation Techniques in MIMO Antenna Systems,” Indian J. Sci. Technol., 2016, 9, (9), pp. 1–5.
  • [48] A. A. Ibrahim and M. A. Abdalla, “CRLH MIMO Antenna with Reversal Configuration,” AEUE - Int. J. Electron. Commun., 2016. 7, (3), pp. 1–8.
  • [49] N. K. Kiem, H. Nguyen, B. Phuong, Q. N. Hieu, and D. N. Chien, “A Novel Metamaterial MIMO Antenna with High Isolation for WLAN Applications,” Int. J. Antennas Propag., 2015, 15, (3). pp. 159–168.
  • [50] J. Y. Lee, S. H. Kim, and J. H. Jang, “Reduction of Mutual Coupling in Planar Multiple Antenna by Using 1-D EBG and SRR Structures,” IEEE Trans. Antennas Propag., 2015. 63, (9), pp. 4194–4198.
  • [51] B. Aouadi and J. Belhadj Tahar, “Requirements Analysis of Dual Band MIMO Antenna,” Wirel. Pers. Commun., 2015., 82, (1), pp. 35–45.
  • [52] G. Zhai, Z. N. Chen, and X. Qing, “Mutual Coupling Reduction of a Closely Spaced Four-Element MIMO Antenna System Using Discrete Mushrooms,” IEEE Trans. Microw. Theory Tech., 2016. 64, (10), pp. 3060–3067.
  • [53] K. Li, Y. Shi, and C.-H. Liang, “QUAD-ELEMENT MULTI-BAND ANTENNA ARRAY IN THE SMART MOBILE PHONE FOR LTE MIMO OPERATIONS,” Microw. Opt. Technol. Lett., 2016. 58, (11), pp. 613–616.
  • [54] A. K. Panda, S. Sahu, and R. K. Mishra, “A Compact Dual Band 2×1 Metamaterial Inspired MIMO Antenna System With High Port Isolation for LTE and WiMAX Applications,” Int. J. RF Microw. Comput. Eng., 2017. 15,(3), pp. 1–11.
  • [55] J. Ghosh, D. Mitra, and S. R. Bhadra Chaudhuri, “Reduction of Leaky Wave Coupling in A Superstrate Loaded Antenna Using Metamaterial,” J. Electromagn. Waves Appl.,2018. 32, (17), pp. 2292–2303.
  • [56] A. H. Radhi, R. Nilavalan, Y. Wang, A. A. Eltokhy, and N. A. Aziz, “Mutual Coupling Reduction with a Novel Fractal Electromagnetic Band Gap Structure,” Rev. by River Val. This Technol. IET Microwaves, 2018. 13, (4), pp. 2–10.
  • [57] F. Wang, Z. Duan, S. Li, Z. Wang, and Y. Gong, “Compact UWB MIMO Antenna with Metamaterial-Inspired Isolator,” Prog. Electromagn. Res. C, 2018. 84, (3), pp. 61–74.
  • [58] F. Liu, J. Guo, L. Zhao, X. Shen, and Y. Yin, “A Meta-Surface Decoupling Method for Two Linear Polarized Antenna Array in Sub-6 GHz Base Station Applications,” IEEE Access, 2019. 7,(15), pp. 2759–2768.
  • [59] J. Guo, F. Liu, L. Zhao, Y. Yin, G.-L. Huang, and Y. Li, “Meta Surface Antenna Array Decoupling Designs for Two Linear Polarized Antennas Coupled in H-Plane and E-Plane,” IEEE Access, 2019. 7,(2), pp. 100442–100452.
  • [60] J. Ghosh, D. Mitra, and S. Das, “Mutual Coupling Reduction of Slot Antenna Array by Controlling Surface Wave Propagation,” IEEE Trans. Antennas Propag., 2019. 67, (2), pp. 1352–1357.
  • [61] A. H. Jabire, H.-X. Zheng, A. Abdu, and Z. Song, “Characteristic Mode Analysis and Design of Wide Band MIMO Antenna Consisting of Metamaterial Unit Cell,” Electronics, 2019. 8, (1), pp. 68–76.
  • [62] R. Mark and S. Das, “Near Zero Parameter Metamaterial Inspired Superstrate for Isolation Improvement in MIMO Wireless Application,” 2019. Frequenz, 0, (0), pp. 1–5.
  • [63] N. L. Nguyen and V. Y. Vu, “Gain Enhancement for MIMO Antenna Using Metamaterial Structure,” Int. J. Microw. Wirel. Technol., 2019.,33, (3) pp. 2–13.
  • [64] R. Mark, N. Rajak, K. Mandal, and S. Das, “Metamaterial Based Superstrate towards the Isolation and Gain Enhancement of MIMO Antenna for WLAN application,” AEUE - Int. J. Electron. Commun., 2019.56, (13), pp. 2–7.
  • [65] A. C. J. Malathi and D. Thiripurasundari, “Review on Isolation Techniques in MIMO Antenna Systems,” Indian J. Sci. Technol., 2016. 9, (35), pp. 1–10.
  • [66] S. Chouhan, D. K. Panda, M. Gupta, and S. Singhal, “Multiport MIMO antennas with mutual coupling reduction techniques for modern wireless transreceive operations: A review,” Int. J. RF Microw. Comput. Eng., 2018. 28, (2), pp. 1–15.
  • [67] Y. Yu and L. Yi, “Compact Dual-Frequency Microstrip Antenna Array with Increased Isolation Using Neutralization Lines,” Prog. Electromagn. Res. Lett., 2015. 56, (7), pp. 95–100.
  • [68] C. Y. Hsu, L. T. Hwang, F. S. Chang, S. M. Wang, and C. F. Liu, “Investigation of A Single-Plate Π-Shaped Multiple-Input-Multiple-Output Antenna with Enhanced Port Isolation for 5 Ghz Band Applications,” IET Microwaves, Antennas Propag., 2016. 10, (5), pp. 553–560.
  • [69] W. H. Shin, S. Kibria, and M. T. Islam, “Hexa Band MIMO Antenna with Neutralization Line for Lte,” Microw. Opt. Technol. Lett., 2016. 58, (5), pp. 1198–1204.
  • [70] Y. Yu, X. Liu, Z. Gu, and L. Yi, “A Compact Printed Monopole Array with Neutralization Line for UWB Applications,” IEEE Int. Symp. Antennas Propag., 2016. 15, (4) pp. 169–178.
  • [71] K.-L. Wong and L.-Y. Chen, “Dual-Inverted-F Antenna with A Decoupling Chip Inductor for The 3.6-Ghz LTE Operation in The Tablet Computer,” Microw. Opt. Technol. Lett.,2015. 57, (9), pp. 2189–2194.
  • [72] R. M. Rudish et al., “3 . 6-Ghz 10-Antenna Array for MIMO Operation in The Smartphon Applications,” Microw. Opt. Technol., 2015. 57, (7), pp. 1699–1705.
  • [73] K.-L. Wong and H.-J. Chang, “Hybrid Dual-Antenna for The 3.6-Ghz LTE Operation in The Tablet Computer,” Microw. Opt. Technol. Lett., 2015. 57, (11), pp. 2592–2598.
  • [74] Kin-Lu Wong, J.-Y. Lu, L.-Y. Chen, W.-Y. Li, and Y.-L. Ban3, “8-Antenna and 16-Antenna Arrays Using The Quad-Antenna Linear Array as A Building Block for The 3 . 5-Ghz LTE MIMO Operation in The Smartphone Applications,” Microw. Opt. Technol. Lett., 2015, 57, (7), pp. 174–181.
  • [75] A. Toktas, “Log-Periodic Dipole Array-Based MIMO Antenna for The Mobile Handsets,” J. Electromagn. Waves Appl., 2016. 5071, (2), pp. 14–81.
  • [76] Y. L. Ban, C. Li, C. Y. D. Sim, G. Wu, and K. L. Wong, “4G/5G Multiple Antennas for Future Multi-Mode Smartphone Applications,” IEEE Access, 2016. 4, (c), pp. 2981–2988.
  • [77] L. Qu, R. Zhang, and H. Kim, “Decoupling Between Ground Radiation Antennas with Ground-Coupled Loop-Type Isolator for WLAN Applications,” IET Microwaves, Antennas Propag., 2016. 10, (5), pp. 546–552.
  • [78] K. Wong, C. Tsai, S. Member, and J. Lu, “Two Asymmetrically Mirrored Gap-Coupled Loop Antennas as a Compact Building Block for Eight-Antenna MIMO Array in the Future,” IEEE Trans. Antennas Propag., 2017. 7, (c), pp. 1–14.
  • [79] C. D. Xue, X. Y. Zhang, Y. F. Cao, Z. Hou, and C. F. Ding, “MIMO Antenna Using Hybrid Electric and Magnetic Coupling for Isolation Enhancement,” IEEE Trans. Antennas Propag., 2017. 65, (10), pp. 5162–5170.
  • [80] M. A. Abdalla and A. A. Ibrahim, “Simple μ-negative half mode CRLH Antenna Configuration for MIMO Applications,” Radioengineering, 2017. 26, (1), pp. 45–50.
  • [81] A. Kayabasi, A. Toktas, E. Yigit, and K. Sabanci, “Triangular Quad-Port Multi-Polarized UWB MIMO Antenna with Enhanced Isolation Using Neutralization Ring,” AEU - Int. J. Electron. Commun., 2018. 85, (2) pp. 47–53.
  • [82] C. Wu, J. Sun, and B. Lu, “Multiple-Input – Multiple-Output Antenna Design for a Smartwatch in 5 . 2 – 5 . 8GHz Wireless Applications,”. Int. J. Antennas Propag., 2018. 5, (1), pp. 147– 153.
  • [83] T. Dabas, D. Gangwar, B. K. Kanaujia, and A. K. Gautam, “Mutual Coupling Reduction between Elements of UWB MIMO Antenna Using Small Size Uniplanar EBG exhibiting Multiple Stop Bands,” AEUE - Int. J. Electron. Commun., 2018. 55, (12) pp. 27–33.
  • [84] E. Fritz, H. Aguilar, and J. A. Mendez, “Mutual Coupling Reduction of Two 2x1 Triangular-Patch Antenna Array Using a Single Neutralization Line for MIMO Applications,” ELECTROMAGNETICS, 2019. 123,(11), pp. 976–982.
  • [85] R. N. Tiwari, P. Singh, B. K. Kanaujia, and K. Srivastava, “Neutralization Technique Based Two and Four Port High Isolation MIMO Antennas for UWB Communication,” AEU - Int. J. Electron. Commun., 2019. 110, (3) pp. 152–158.
  • [86] W. Jiang, B. Liu, Y. Cui, and W. Hu, “High-Isolation Eight Element MIMO Array for 5G Smartphone Applications,” IEEE Access, 2019. 7, (34), pp. 34104–34112.
  • [87] M. Wang, B. Xu, and Y. Li, “Multiband Multiple-Input Multiple Output Antenna with High Isolation for Future 5G Smartphone Applications,” RF Microw. Comput -AIDED Eng., 2019. 53, (1), pp. 1–14.
  • [88] S. Pahadsingh and S. Sahu, “An Integrated MIMO Filtenna With Wide band-Narrow band Functionality,” AEU - Int. J. Electron. Commun., 2019, 87, (4) pp. 152862–152872.
  • [89] I. Mohamed, M. Abdalla and A. E.-A. Mitkees, “Perfect Isolation Performance Among Two-Element MIMO Antennas,” AEUE - Int. J. Electron. Commun.,2019. 107,(13), pp. 21–31.
  • [90] M. K. Khandelwal, B. K. Kanaujia, and S. Kumar, “Defected Ground Structure: Fundamentals, Analysis, and Applications in Modern Wireless Trends,” Int. J. Antennas Propag., 2017, 63, (1), pp. 5–16.
  • [91] P. R. Prajapati, “Application of Defected Ground Structure to Suppress Out-of-Band Harmonics for WLAN Microstrip Antenna,” Int. J. Microw. Sci. Technol., 2015, 15, (3), pp. 55–61.
  • [92] R. Anitha, V. P. Sarin, P. Mohanan, and K. Vasudevan, “Enhanced isolation with defected ground structure in MIMO antenna,” Electron. Lett., 2015. 50, (24), pp. 15–26.
  • [93] K. Wei, J. Li, L. Wang, Z. Xing, and R. Xu, “S-Shaped Periodic Defected Ground Structures to Reduce Microstrip Antenna Array Mutual Coupling,” Electron. Lett., 2016. 52, (15), pp. 55–63.
  • [94] L. Kang, H. Li, X. Wang, and X. Shi, “Compact Offset Microstrip-fed MIMO Antenna for Band-Notched UWB Applications,” IEEE Antennas Wirel. Propag. Lett., 2015. 1225, (c), pp. 4–7.
  • [95] H. S. Singh, G. K. Pandey, P. K. Bharti, and M. K. Meshram, “A Compact Dual-Band Diversity Antenna for WLAN Applications with High Isolation,” Microw. Opt. Technol. Lett, 2015. 57, (4), pp. 873–879.
  • [96] Y. S. Chen and C. P. Chang, “Design Of A Four-Element Multiple-Input-Multiple-Output Antenna For Compact Long Term Evolution Small-Cell Base Stations,” IET Microwaves, Antennas Propag., 2016. 10, (4), pp. 385–392.
  • [97] W. R. Hewlett et al., “An L -Shaped 4-Element Monopole Mimo Antenna System with Enhanced Isolation for Mobile,” Microw Opt Technol Lett., 2016. 58, (11), pp. 2587–2591.
  • [98] C. R. Jetti and V. R. Nandanavanam, “Trident-Shape Strip Loaded Dual Band-Notched UWB MIMO Antenna for Portable Device Applications,” AEUE - Int. J. Electron. Commun., 2017. 8, (1), pp. 12687–12691.
  • [99] S. S. Jehangir and M. S. Sharawi, “A Miniaturized Multi Wideband Quasi-Yagi MIMO Antenna System,” Microw Opt Technol., 2018. 13, (12), pp. 88–95.
  • [100] U. Fritz and Esslle, “A Compact Multi-Band MIMO Antenna with High Isolation for C and X Bands Using Defected Ground Structure,” ELECTROMAGNETICS, 2018.11, (4), pp. 686–693.
  • [101] JAeu, Rohit, and S. Dwari, “Compact CPW-Fed Ultrawideband MIMO Antenna Using Hexagonal Ring Monopole Antenna Elements,” Int. J. Electron. Commun., 2018. 93, (5), pp. 1–6.
  • [102] X. Zou and G. W. Y. Wang, “A Novel Combined Structure for Decoupling E / H-Plane Microstrip Antenna Array,” Int. J. RF Microw. Comput. Eng., 2018. 35, (1), pp. 1–10.
  • [103] W. Hu, “Compact Dual-Band Antenna Based on CRLHTL For WWAN / LTE Terminal Applications,” Int. J. RF Microw. Comput. Eng.,2018. 56, (10), pp. 1–8.
  • [104] A. Raza, M. U. Khan, and F. A. Tahir, “A 2-Element Meandered-Line Slot-Based Frequency Reconfigurable MIMO Antenna System,” Microw Opt Technol Lett.,2018. 39, (5), pp. 1–8.
  • [105] W. Wu, B. Yuan, and A. Wu, “Research Article A Quad Element UWB-MIMO Antenna with Band-Notch and Reduced Mutual Coupling Based on EBG Structures,” Int. J. Antennas Propag., 2018. 57, (7), pp. 1–4.
  • [106] W. L. Cheor, A. A. Al-Hadi, P. J. Soh, and M. F. Jamlos, “Study of Multiple Antennas with Defected Ground Slot for Low Band LTE Application,” Bull. Electr. Eng. Informatics, 2019. 8, (1), pp. 83–89.
  • [107] S. Bashir, “A DGS Monopole Antenna Loaded With U Shape Stub for UWB MIMO Applications,” Microw. Opt. Technol. Lett.,2019. 13, no. (5), pp. 2141–2149.
  • [108] R. Hussain and M. S. Sharawi, “Miniaturized Frequency Reconfigurable Pentagonal MIMO Slot Antenna for Interweave CR Applications,” Int. J. RF Microw. Comput. Eng.,2019. 13, (5), pp. 1–12.
  • [109] Q. Li, M. Abdullah, and X. Chen, “Defected Ground Structure Loaded With Meandered Lines for Decoupling of Dual-Band Antenna,” J. Electromagn. Waves Appl., 2019. 0, (0), pp. 1–12.
  • [110] M. Rezapour, A. Keshtkar, M. Naseri, and A. M. Ibrahim, “Isolation Enhancement of Rectangular Dielectric Resonator Antennas Using Wideband Double Slit Complementary Split Ring Resonators,” Int. J. RF Microw. Comput. Eng., 2019, 45, (7), pp. 1–11.
  • [111] C. M. Luo, J. S. Hong, and L. L. Zhong, “Isolation Enhancement of a Very Compact UWB-MIMO Slot Antenna with Two Defected Ground Structures,” IEEE Antennas Wirel. Propag. Lett., 2015. 14, (5), pp. 1766–1769.
  • [112] H. S. Singh, Shalini, and M. K. Meshram, “Printed Monopole Diversity Antenna for USB Dongle Applications,” Wirel. Pers. Commun., 2016. 86, (2), pp. 771–787.
  • [113] M. Abdullah, Y. Ban, K. Kang, M. Li, and M. Amin, “Eight Element Antenna Array at 3. 5 GHz for MIMO Wireless Application,” Electromagn. Res., 2017. 78, (11), pp. 209–216, 2017.
  • [114] S. R. Pasumarthi, “Design of Dual Band MIMO Antenna with Improved Isolation,” Microw Opt Technol Lett., 2018. 25, (10), pp. 3–7.
  • [115] K. V. Babu and B. Anuradha, “Design and Analysis of Multi-Band Circle Shape MIMO Antenna Using Defected Ground Structure to Reduce Mutual Coupling,” Microw Opt Technol., 2019. 4,(1), pp. 32–40.
  • [116] Y. Ou, X. Cai, and K. Qian, “Two-Element Compact Antennas Decoupled with a Simple Neutralization Line,” Electromagn. Res. Lett., 2017. 65, (11), pp. 63–68.
  • [117] G. Das, R. K. Gangwar, and M. S. Sharawi, “Triple-Port, Two-Mode Based Two Element Cylindrical Dielectric Resonator Antenna for MIMO Applications,” Microw Opt Technol Lett, 2018, 57, (60), pp. 1566–1573.
  • [118] G. Irene and A. Rajesh, “A Dual-Polarized UWB – MIMO Antenna with IEEE 802. 11ac Band-Notched Characteristics Using Split-Ring Resonator,” J. Comput. Electron., 2018, 7, (6), pp. 156–153.
  • [119] N. Jaglan, S. D. Gupta, E. Thakur, D. Kumar, B. K. Kanaujia, and S. Srivastava, “Triple Band Notched Mushroom and Uniplanar EBG Structures Based UWB MIMO/Diversity Antenna with Enhanced Wide Band Isolation,” AEUE-Int. J. Electron. Commun., 2018. 90, (3), pp. 36–44.
  • [120] I. Suriya and R. Anbazhagan, “Inverted-A Based UWB MIMO Antenna With Triple-Band Notch and Improved Isolation for WBAN Applications,” Int. J. Electron. Commun. AEÜ, 2019. 99, (3), pp. 25–33.
  • [121] A. M. Ibrahim, I. M. Ibrahim, and N. A. Shairi, 2020. Compact MIMO Antenna for LTE and 5G Applications. Inter. Jou. Of Micr. and Opti.Techn., 15(4), pp.360-368.
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2021).
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Bibliografia
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bwmeta1.element.baztech-b76d4ec7-d53f-4345-b861-8b2ace4b0202
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