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Dual-band all textile antenna with AMC for heartbeat monitor and pacemaker control applications

Published online by Cambridge University Press:  01 December 2021

Farah R. Kareem*
Affiliation:
Communication and Electronics Department, Faculty of Engineering, Minia University, Minia, Elminia, 61512, Egypt Electrical Communication and Electronic Systems Engineering Department, October University for Modern Sciences and Arts, Giza 12563, Egypt
Mohamed El Atrash
Affiliation:
Electrical Communication and Electronic Systems Engineering Department, October University for Modern Sciences and Arts, Giza 12563, Egypt
Ahmed A. Ibrahim
Affiliation:
Communication and Electronics Department, Faculty of Engineering, Minia University, Minia, Elminia, 61512, Egypt
Mahmoud A. Abdalla
Affiliation:
Electronic Engineering Department, Military Technical College, Cairo 11787, Egypt
*
Author for correspondence: Farah R. Kareem, E-mail: [email protected]

Abstract

All textile integrated dual-band monopole antenna with an artificial magnetic conductor (AMC) is proposed. The proposed design operates at 2.4 and 5.8 GHz for wearable medical applications to monitor the heartbeat. A flexible and low-profile E- shaped CPW dual-band textile antenna is integrated with a 4 × 4 dual-band textile AMC reflector to enhance the gain and specific absorption rate (SAR). The SAR is reduced by nearly 95% at both 1 and 10 g. The design was measured on the body with a 2 mm separation. The simulated and measured results appear in high agreement in the case of with and without AMC array integration. The measurement was performed in the indoor environment and in an anechoic chamber to validate the design based on reflection coefficient and radiation pattern measurements.

Type
Biomedical Applications
Copyright
Copyright © The Author(s), 2021. Published by Cambridge University Press in association with the European Microwave Association

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References

Ashyap, AYI, Abidin, Z, Dahlan, SH, Majid, HA, Kamarudin, MR, Alomainy, A, Abd-Alhameed, RA, Kosha, JS and Noras, JM (2018) Highly efficient wearable CPW antenna enabled by EBG-FSS structure for medical body area network applications. IEEE Access 6, 7752977541.CrossRefGoogle Scholar
Lee, H, Tak, J and Choi, J (2017) Wearable antenna integrated into military berets for indoor/outdoor positioning system. IEEE Antennas and Wireless Propagation Letters 16, 19191922.10.1109/LAWP.2017.2688400CrossRefGoogle Scholar
Saied, I, Chandran, S and Arslan, T (2019) Integrated flexible hybrid silicone-textile dual-resonant sensors and switching circuit for wearable neurodegeneration monitoring systems. IEEE Transaction on Biomedical Circuits and Systems 1, 19321941.Google Scholar
Malik, NA, Sant, P, Ajmal, T and Ur-Rehman, M (2021) Implantable antennas for bio-medical applications. The IEEE Journal of Electromagnetics, RF and Microwaves in Medicine and Biology 5, 8496.10.1109/JERM.2020.3026588CrossRefGoogle Scholar
Locher, I, Klemm, M, Kirstein, T and Tröster, G (2006) Design and characterization of purely textile patch antennas. IEEE Transactions on Advanced Packaging 29, 777788.CrossRefGoogle Scholar
Li, Y, Yang, L, Gao, M, Zhao, X and Zhang, X (2020) A study of a one-turn circular patch antenna array and the influence of the human body on the characteristics of the antenna. Ad Hoc Networks 99, 102059.CrossRefGoogle Scholar
Liu, FX, Kaufmann, T, Xu, Z and Fumeaux, C (2015) Wearable applications of quarter-wave patch and half-mode cavity antennas. IEEE Antennas and Wireless Propagation Letters 14, 14781481.CrossRefGoogle Scholar
Simorangkir, RBVB, Yang, Y, Matekovits, L and Esselle, KP (2017) Dual-band dual-mode textile antenna on PDMS substrate for body-centric communications. IEEE Antennas and Wireless Propagation Letters 16, 677680.CrossRefGoogle Scholar
Masrakin, K, Rahim, HA, Soh, PJ, Abdulmalek, M, Adam, I, Warip, M, Abbasi, Q and Yang, X (2019) Assessment of worn textile antennas’ exposure on the physiological parameters and well-being of adults. IEEE Access 7, 9894698958.CrossRefGoogle Scholar
Ashyap, AYI, Dahlan, SHB, Abidin, Z, Abdul Rahim, SK, Majid, HA and El Atrash, M (2021) Fully fabric high impedance surface-enabled antenna for wearable medical applications. IEEE Access 9, 69486960.CrossRefGoogle Scholar
Hamouda, Z, Wojkiewicz, JL, Pud, AA, Kone, L, Bergheul, S and Lasri, T (2018) Magnetodielectric nanocomposite polymer-based dual-band flexible antenna for wearable applications. IEEE Transactions on Antennas and Propagation 66, 32713277.CrossRefGoogle Scholar
Hong, Y, Tak, J and Choi, J (2015) All textile antennas for self-monitoring biomedical applications (invited). 2015 IEEE MTT-S Int. Microw. Work. Ser. RF Wirel. Technol. Biomed. Healthc. Appl. IMWS-BIO 2015 – Proc., pp. 19–20.CrossRefGoogle Scholar
Liu, H, Wang, J and Luo, X (2017) Flexible and compact AMC based antenna for WBAN applications. 2017 IEEE Antennas Propag. Soc. Int. Symp. Proc. 2017 January, pp. 587–588.CrossRefGoogle Scholar
Agarwal, K, Member, S, Guo, Y, Member, S and Salam, B (2016) Wearable AMC Backed Near-Endfire Antenna for On-Body Communications on Latex Substrate. IEEE Transactions on Components, Packaging and Manufacturing Technology 6(3), 346358.CrossRefGoogle Scholar
Liu, Q, Liu, H, He, W and He, S (2020) A low-profile dual-band dual-polarized antenna with an AMC reflector for 5 G communications. IEEE Access 8, 2407224080.CrossRefGoogle Scholar
Kumar, A, Deegwal, JK and Sharma, MM (2018) Design of multi-polarised quad-band planar antenna with parasitic multistubs for multiband wireless communication. IET Microwaves, Antennas and Propagation 12, 718726.CrossRefGoogle Scholar
Parchin, NO, Basherlou, HJ, Abd-Alhameed, RA and Noras, JM (2019) Dual-band monopole antenna for RFID applications. Future Internet 11, 14531463.Google Scholar
Chandan, , Bharti, G, Srivastava, T and Rai, BS (2018) Dual-band monopole antenna for WLAN 2.4/5.2/5.8 with truncated ground. AIP Conference Proceedings 1952, 410.Google Scholar
Sharma, Y, Zhang, HH and Xin, H (2020) Machine learning techniques for optimizing design of double T-shaped monopole antenna. IEEE Transactions on Antennas and Propagation 68, 56585663.CrossRefGoogle Scholar
Agneessens, S and Rogier, H (2014) Compact half diamond dual-band textile HMSIW on-body antenna. IEEE Transactions on Antennas and Propagation 62, 23742381.CrossRefGoogle Scholar
Mouhouche, F, Azrar, A, Dehmas, M and Djafri, K (2017) Gain improvement of CPW-Fed monopole antenna over dual-band AMC structure. 2017 5th Int. Conf. Electr. Eng. – Boumerdes, ICEE-B 2017 2017-January, pp. 1–4.CrossRefGoogle Scholar
Wang, M, Yang, Z, Wu, J, Bao, J, Liu, J, Dang, T, Zheng, H and Li, E (2018) Investigation of SAR reduction using flexible antenna with metamaterial structure in wireless body area network. IEEE Transactions on Antennas and Propagation 66, 30763086.CrossRefGoogle Scholar
Akbar, MB, Taylor, DG and Durgin, GD (2020) Two-dimensional position and orientation estimation using a 5.8 GHz RFID system. IEEE Journal of Radio Frequency Identification 4, 365372.CrossRefGoogle Scholar
Prakash, P, Abegaonkar, MP, Basu, A and Koul, SK (2013) Gain enhancement of a CPW-Fed monopole antenna using polarization-insensitive AMC structure. IEEE Antennas and Wireless Propagation Letters 12, 13151318.CrossRefGoogle Scholar
Lazaro, A, Lazaro, M and Villarino, R (2021) Room-level localization system based on LoRa backscatters. IEEE Access 9, 1600416018.CrossRefGoogle Scholar
Hiremath, S, Yang, G and Mankodiya, K (2014) Wearable Internet of Things: Concept, Architectural Components and Promises for Person-Centered Healthcare. Athens, Greece: IEEE, pp. 14.Google Scholar
Rano, D and Hashmi, M (2016) Design and analysis of wearable patch antenna array for MBAN applications. 2016 22nd Natl. Conf. Commun. NCC 2016, pp. 1–6.CrossRefGoogle Scholar
Lo, B and Yang, GZ (2007) Body sensor networks - research challenges and opportunities. IET Seminar Digest 2007, 2632.Google Scholar
Moreira, EC, Martins, RO, Ribeiro, BMS and Sombra, ASB (2019) A novel gain-enhanced antenna with metamaterial planar lens for long-range UHF RFID applications. Progress In Electromagnetics Research B 85, 143161.CrossRefGoogle Scholar
El Atrash, M, Abdalla, MA and Elhennawy, HM (2019) A wearable dual-band low profile high gain Low SAR antenna AMC-backed for WBAN applications. IEEE Transactions on Antennas and Propagation 67, 63786388.CrossRefGoogle Scholar
Heile, R, Rick, A, Patrick, K, James, G and Clint, C (2012) IEEE Standard for Local and Metropolitan Area Networks — Part 15.4 : Low-Rate Wireless Personal Area Networks (LR-WPANs) Amendment 1 : MAC Sublayer IEEE Computer Society. New Yourk, USA: IEEE.Google Scholar
Pozar, DM (1377) Microwave Engineering, 4. United States of America: John Wiley & Sons, Inc., pp. 230235.Google Scholar
Abbasi, MAB, Nikolaou, SS, Antoniades, MA, Nikolić Stevanović, M and Vryonides, P (2017) Compact EBG-backed planar monopole for BAN wearable applications. IEEE Transactions on Antennas and Propagation 65, 453463.CrossRefGoogle Scholar
Mendes, C and Peixeiro, C (2018) On-Body transmission performance of a novel dual-mode wearable microstrip antenna. IEEE Transactions on Antennas and Propagation 66, 48724877.CrossRefGoogle Scholar
Pei, R, Leach, M, Lim, EG, Wang, Z, Song, C, Wang, J, Zhang, W, Jiang, Z and Huang, Y (2020) Wearable EBG-backed belt antenna for smart On-body applications. IEEE Transactions on Industrial Informatics 16, 71777189.CrossRefGoogle Scholar
Yan, S, Soh, PJ and Vandenbosch, GAE (2014) Low-profile dual-band textile antenna with artificial magnetic conductor plane. IEEE Transactions on Antennas and Propagation 62, 64876490.CrossRefGoogle Scholar
I. S. C. C. 28, IEEE Standards Coordinating Committee, I. S. C. C. 28, and IEEE Standards Coordinating Committee (2003) IEEE Recommended Practice for Measurements and Computations of Radio Frequency Electromagnetic Fields with Respect to Human Exposure to Such Fields 2002. USA and Canada: IEEE.Google Scholar
Afridi, A, Ullah, S, Khan, S, Ahmed, A, Khalil, AH and Tarar, MA (2013) Design of dual-band wearable antenna using metamaterials. The Journal of Microwave Power and Electromagnetic Energy 47, 126137.CrossRefGoogle ScholarPubMed
Ashyap, AYI, Abidin, Z, Dahlan, SH, Majid, HA, Shah, SM, Kamarudin, MR and Alomainy, A (2017) Compact and Low-profile Textile EBG-based antenna for wearable medical applications. IEEE Antennas and Wireless Propagation Letters 16, 25502553.CrossRefGoogle Scholar
Bait-Suwailam, MM, Labiano, II and Alomainy, A (2020) Impedance enhancement of textile grounded loop antenna using high-impedance surface (HIS) for healthcare applications. Sensors (Switzerland) 20, 118.CrossRefGoogle ScholarPubMed
Smida, A, Iqbal, A, Alazemi, AJ, Waly, MI, Ghayoula, R and Kim, S (2020) Wideband wearable antenna for biomedical telemetry applications. IEEE Access 8, 1568715694.CrossRefGoogle Scholar
Jiang, ZH, Brocker, DE, Member, S, Sieber, PE, Member, S, Werner, DH and Compact, A (2014) Low-Pro fi le metasurface-enabled network devices. IEEE Transactions on Antennas and Propagation 62, 40214030.CrossRefGoogle Scholar