[1] M. Kumar, “Social, economic, and environmental impacts of renewable energy resources,” Wind Solar Hybrid Renewable Energy System, vol. 1, 2020.
[2] H. Liu, H. Fu, L. Sun, C. Lee, and E. M. Yeatman, “Hybrid energy harvesting technology: From materials, structural design, system integration to applications,” Renewable and sustainable energy reviews, vol. 137, p. 110473, 2021.
[3] P. Jiao, W. Borchani, H. Hasni, and N. Lajnef, “Enhancement of quasi-static strain energy harvesters using non-uniform cross-section post-buckled beams,” Smart Materials and Structures, vol. 26, no. 8, p. 085045, 2017.
[4] A. Mohammadnia, A. Rezania, B. M. Ziapour, F. Sedaghati, and L. Rosendahl, “Hybrid energy harvesting system to maximize power generation from solar energy,” Energy Conversion and Management, vol. 205, p. 112352, 2020.
[5] Q. Wen, X. He, Z. Lu, R. Streiter, and T. Otto, “A comprehensive review of miniatured wind energy harvesters,” Nano Materials Science, vol. 3, no. 2, pp. 170–185, 2021.
[6] A. Nozariasbmarz et al., “Review of wearable thermoelectric energy harvesting: From body temperature to electronic systems,” Applied Energy, vol. 258, p. 114069, 2020.
[7] R. Subbaramaiah, S. A. Al-Jufout, A. Ahmed, and M. M. Mozumdar, “Design of vibration-sourced piezoelectric harvester for battery-powered smart road sensor systems,” IEEE Sensors Journal, vol. 20, no. 23, pp. 13940–13949, 2020.
[8] S. Roy, J.-J. Tiang, M. B. Roslee, M. Ahmed, A. Z. Kouzani, and M. Mahmud, “Design of a Highly Efficient Wideband Multi-Frequency Ambient RF Energy Harvester,” Sensors, vol. 22, no. 2, p. 424, 2022.
[9] S. A. A. Shah and H. Yoo, “Radiative near-field wireless power transfer to scalp-implantable biotelemetric device,” IEEE Transactions on Microwave Theory and Techniques, vol. 68, no. 7, pp. 2944–2953, 2020.
[10] M. T. Bevacqua, G. G. Bellizzi, and M. Merenda, “An efficient far-field wireless power transfer via field intensity shaping techniques,” Electronics, vol. 10, no. 14, p. 1609, 2021.
[11] A. M. Sabaawi and O. A. Al-Ani, “Solar Rectennas: Analysis and Design,” in Recent Wireless Power Transfer Technologies, IntechOpen, 2019.
[12] M. Al-Hasan, P. R. Sura, A. Iqbal, J. J. Tiang, I. B. Mabrouk, and M. Nedil, “Low-profile dual-band implantable antenna for compact implantable biomedical devices,” AEU-International Journal of Electronics and Communications, vol. 138, p. 153896, 2021.
[13] N. Marriwala, “Energy Harvesting System Design and Optimization Using High Bandwidth Rectenna for Wireless Sensor Networks,” Wireless Personal Communications, vol. 122, no. 1, pp. 669–684, 2022.
[14] P. Sharma and A. K. Singh, “A Compact Antenna Design With High Gain for Wireless Energy Harvesting,” in Computational Methodologies for Electrical and Electronics Engineers, IGI Global, 2021, pp. 244–253.
[15] N. Saranya and T. Kesavamurthy, “Review on next generation wireless power transmission technology for implantable biomedical devices,” International Journal of Biomedical Engineering and Technology, vol. 35, no. 3, pp. 207–222, 2021.
[16] A. N. Khan, Y. Cha, H. Giddens, and Y. Hao, “Recent advances in organ specific wireless bioelectronic devices: Perspective on biotelemetry and power transfer using antenna systems,” Engineering, 2022.
[17] M. N. Hasan, S. Sahlan, K. Osman, and M. S. Mohamed Ali, “Energy harvesters for wearable electronics and biomedical devices,” Advanced Materials Technologies, vol. 6, no. 3, p. 2000771, 2021.
[18] V. Sadadiwala, K. Mahindroo, V. Singh, P. Bansal, and S. Singhal, “Human Body Monitoring Wearable Antenna,” in Optical and Wireless Technologies, Springer, 2022, pp. 151–161.
[19] M. Zellagui, Wireless Power Transfer: Recent Development, Applications and New Perspectives. BoD–Books on Demand, 2021.
[20] M. Song et al., “Wireless power transfer based on novel physical concepts,” Nature Electronics, vol. 4, no. 10, pp. 707–716, 2021.
[21] L. J. Zou, Y. Liu, Y.-G. Su, and A. P. Hu, “Study of power flow mechanism of capacitive power transfer system based on Poynting vector analysis,” International Journal of Electrical Power & Energy Systems, vol. 134, p. 107374, 2022.
[22] J. Bao, S. Hu, Z. Xie, G. Hu, Y. Lu, and L. Zheng, “Optimization of the Coupling Coefficient of the Inductive Link for Wireless Power Transfer to Biomedical Implants,” International Journal of Antennas and Propagation, vol. 2022, 2022.
[23] H. K. Behera and D. P. Kar, “Preliminary Study of Magnetic Resonant Coupling Based Wireless Power Transfer System,” in Green Technology for Smart City and Society, Springer, 2021, pp. 377–384.
[24] S. R. Khan, S. K. Pavuluri, G. Cummins, and M. P. Desmulliez, “Wireless power transfer techniques for implantable medical devices: A review,” Sensors, vol. 20, no. 12, p. 3487, 2020.
[25] J. Kim et al., “Active photonic wireless power transfer into live tissues,” Proceedings of the National Academy of Sciences, vol. 117, no. 29, pp. 16856–16863, 2020.
[26] Z. Kashani, S. J. J. Ilham, and M. Kiani, “Design and Optimization of Ultrasonic Links with Phased Arrays for Wireless Power Transmission to Biomedical Implants,” IEEE Transactions on Biomedical Circuits and Systems, 2022.
[27] A. D. Boursianis et al., “Triple-band single-layer rectenna for outdoor RF energy harvesting applications,” Sensors, vol. 21, no. 10, p. 3460, 2021.
[28] D. H. Sadek, H. A. Shawkey, and A. A. Zekry, “Compact and High-Efficiency Rectenna for Wireless Power-Harvesting Applications,” International Journal of Antennas and Propagation, vol. 2021, 2021.
[29] H. Sun, J. Huang, and Y. Wang, “An Omnidirectional Rectenna Array With An Enhanced RF Power Distributing Strategy for RF Energy Harvesting,” IEEE Transactions on Antennas and Propagation, 2022.
[30] M. M. Fakharian, “A high gain wideband circularly polarized rectenna with wide ranges of input power and output load,” International Journal of Electronics, pp. 1–17, 2021.
[31] E. Kwiatkowski, J. A. Estrada, A. López-Yela, and Z. Popović, “Broadband RF Energy-Harvesting Arrays,” Proceedings of the IEEE, vol. 110, no. 1, pp. 74–88, 2022.
[32] H. Yadav, K. P. Ray, and M. Gupta, “Differential microstrip patch rectenna featuring consistent high gain over a wide operating bandwidth,” Microwave and Optical Technology Letters, vol. 63, no. 5, pp. 1470–1476, 2021.
[33] P. Chindhi, H. Rajani, and G. Kalkhambkar, “A Tapered Slot Rectangular Ultra-wideband Microstrip Patch Antenna for Radio Frequency Energy Harvesting,” in Futuristic Communication and Network Technologies, Springer, 2022, pp. 373–383.
[34] C. Xu, Y. Fan, and X. Liu, “A Circularly Polarized Implantable Rectenna for Microwave Wireless Power Transfer,” Micromachines, vol. 13, no. 1, p. 121, 2022.
[35] Q. Awais, A. Farooq, W. Ali, R. Afzal, and A. Khalid, “A Novel Wideband Coplanar Waveguide (CPW) Fed Antenna for Energy Harvesting at 2.45 GHz,” Engineering Proceedings, vol. 12, no. 1, p. 54, 2022.
[36] P. K. Mishu and I. Song, “Highly-Efficient CMOS Rectifier for Wide Range of Input RF Power in Energy-Harvesting Systems,” 2021, pp. 75–79..
[37] Y. Feng, Z. Li, L. Qi, W. Shen, and G. Li, “A compact and miniaturized implantable antenna for ISM band in wireless cardiac pacemaker system,” Scientific Reports, vol. 12, no. 1, pp. 1–11, 2022.
[38] M. J. Karimi, A. Schmid, and C. Dehollain, “Wireless power and data transmission for implanted devices via inductive links: a systematic review,” IEEE Sensors Journal, vol. 21, no. 6, pp. 7145–7161, 2021.
[39] N. A. Malik, P. Sant, T. Ajmal, and M. Ur-Rehman, “Implantable antennas for bio-medical applications,” IEEE Journal of Electromagnetics, RF and Microwaves in Medicine and Biology, vol. 5, no. 1, pp. 84–96, 2020.
[40] M. Abdul-Al et al., “Wireless Electromagnetic Radiation Assessment Based on the Specific Absorption Rate (SAR): A Review Case Study,” Electronics, vol. 11, no. 4, p. 511, 2022.
[41] M. Zhuk and J. Paradis, “An Efficient Approximation of Frequency and Temperature-Dependent Dielectric Properties of Tissues.,” Progress in Electromagnetics Research B, vol. 91, 2021.
[42] S. Di Meo et al., “The variability of dielectric permittivity of biological tissues with water content,” Journal of Electromagnetic Waves and Applications, vol. 36, no. 1, pp. 48–68, 2022.
[43] G. Shin and I.-J. Yoon, “Investigation on insulated, brain-implanted antenna for highly reliable biotelemetry communication in MICS and ISM bands,” Sensors, vol. 20, no. 1, p. 242, 2019.
[44] A. Alemaryeen and S. Noghanian, “On the Effects of Balun on Small Antennas Performance for Animal Health-Monitoring and Tracking,” Advanced Electromagnetics, vol. 10, no. 2, pp. 39–43, 2021.
[45] N. H. Abd Rahman, Y. Yamada, and M. S. Amin Nordin, “Analysis on the effects of the human body on the performance of electro-textile antennas for wearable monitoring and tracking application,” Materials, vol. 12, no. 10, p. 1636, 2019.
[46] J. Zhang, R. Das, J. Zhao, N. Mirzai, J. Mercer, and H. Heidari, “Battery‐Free and Wireless Technologies for Cardiovascular Implantable Medical Devices,” Advanced Materials Technologies, p. 2101086, 2021.
[47] P. G. Paga, H. Nagaraj, R. Tejas, and V. Sanath, “Design and Analysis of Dual-Band Monopole Antenna Using Star EBG Structures,” in Emerging Research in Computing, Information, Communication and Applications, Springer, 2022, pp. 755–767.
[48] M. Samad, M. M. Rahman, and S. Shamim, “Design of a Miniaturized Implantable PIFA with DGS for the Investigation of Uterus Fibroids,” 2021.
[49] R. B. Khadase, A. Nandgaonkar, B. Iyer, and A. Wagh, “Multilayered Implantable Antenna Biosensor for Continuous Glucose Monitoring: Design and Analysis,” Progress In Electromagnetics Research C, vol. 114, pp. 173–185, 2021.
[50] S. Sukhija, R. K. Sarin, and N. Kashyap, “Design of compact wideband serpentine patch antenna for ingestible endoscopic applications,” Progress In Electromagnetics Research M, vol. 66, pp. 53–63, 2018.
[51] A. Rula, “Patch antenna based on spiral split rings for bone implants,” Przegląd Elektrotechniczny, vol. 96, 2020.
[52] T.-A. Le Trong, S. I. H. Shah, G. Shin, S. M. Radha, and I.-J. Yoon, “A compact triple-band antenna with a broadside radiation characteristic for head-implantable wireless communications,” IEEE Antennas and Wireless Propagation Letters, vol. 20, no. 6, pp. 958–962, 2021.
[53] N. Samsuri, M. Rahim, F. Seman, and M. Inam, “Compact meander line telemetry antenna for implantable pacemaker applications,” Indones. J. Electr. Eng. Comput. Sci, vol. 10, pp. 883–889, 2018.
[54] N. Pournoori, L. Sydänheimo, Y. Rahmat-Samii, L. Ukkonen, and T. Björninen, “Small Triple-Band Meandered PIFA for Brain-Implantable Biotelemetric Systems: Development and Testing in a Liquid Phantom,” International Journal of Antennas and Propagation, vol. 2021, 2021.
[55] Y. Fan, H. Liu, X. Liu, Y. Cao, Z. Li, and M. M. Tentzeris, “Novel coated differentially fed dual‐band fractal antenna for implantable medical devices,” IET Microwaves, Antennas & Propagation, vol. 14, no. 2, pp. 199–208, 2020.
[56] F. Faisal and H. Yoo, “A miniaturized novel-shape dual-band antenna for implantable applications,” IEEE Transactions on Antennas and Propagation, vol. 67, no. 2, pp. 774–783, 2018.
[57] C. Gayathri and S. Venkatanarayanan, “A miniaturized circular maze shaped antenna for implantable health care applications,” Journal of Ambient Intelligence and Humanized Computing, vol. 12, no. 5, pp. 4757–4763, 2021.
[58] K. Çelik and E. Kurt, “A novel meander line integrated E‐shaped rectenna for energy harvesting applications,” International Journal of RF and Microwave Computer‐Aided Engineering, vol. 29, no. 1, p. e21627, 2019.
[59] D. Surender, T. Khan, and F. A. Talukdar, “A hexagonal-shaped microstrip patch antenna with notch included partial ground plane for 2.45 GHz Wi-Fi band RF energy harvesting applications,” 2020, pp. 966–969.
[60] D. Surender, T. Khan, and F. A. Talukdar, “A pentagon-shaped microstrip patch antenna with slotted ground plane for RF energy harvesting,” 2020, pp. 1–4.
[61] A. Meftahi et al., “Nanocelluloses as skin biocompatible materials for skincare, cosmetics, and healthcare: Formulations, regulations, and emerging applications,” Carbohydrate Polymers, vol. 278, p. 118956, 2022.
[62] T. Sathiyapriya, V. Gurunathan, and J. Dhanasekar, “Design of an implantable antenna for biomedical applications,” 2021.
[63] G. Rathee, G. Bartwal, J. Rathee, Y. K. Mishra, A. Kaushik, and P. R. Solanki, “Emerging Multimodel Zirconia Nanosystems for High‐Performance Biomedical Applications,” Advanced NanoBiomed Research, vol. 1, no. 9, p. 2100039, 2021.
[64] K. Yeap, C. Voon, T. Hiraguri, and H. Nisar, “A compact dual‐band implantable antenna for medical telemetry,” Microwave and Optical Technology Letters, vol. 61, no. 9, pp. 2105–2109, 2019.
[65] M. Usluer, B. Cetindere, and S. C. Basaran, “Compact implantable antenna design for MICS and ISM band biotelemetry applications,” Microwave and Optical Technology Letters, vol. 62, no. 4, pp. 1581–1587, 2020.
[66] M. Wang et al., “Broadband implantable antenna for wireless power transfer in cardiac pacemaker applications,” IEEE Journal of Electromagnetics, RF and Microwaves in Medicine and Biology, vol. 5, no. 1, pp. 2–8, 2020.
[67] M. Seydi and M. S. Bayati, “Design, Simulation and Fabrication of an Implanted Antenna at ISM Band in Body Tissue,” Wireless Personal Communications, vol. 122, no. 3, pp. 2023–2033, 2022.
[68] R. Kumar, S. Singh, and A. P. S. Chauhan, “Implantable Antenna Design Based on Gosper Curve Fractal Geometry,” IETE Journal of Research, pp. 1–11, 2021.
[69] R. Kumar, L. S. Solanki, and S. Singh, “Miniature Archimedean spiral PIFA antennas for biomedical implantable devices,” in 2019 6th International Conference on Signal Processing and Integrated Networks (SPIN), 2019, pp. 162–167.
[70] N. Ganeshwaran, J. K. Jeyaprakash, M. G. N. Alsath, and V. Sathyanarayanan, “Design of a dual-band circular implantable antenna for biomedical applications,” IEEE Antennas and Wireless Propagation Letters, vol. 19, no. 1, pp. 119–123, 2019.
[71] M. M. Khan and T. Hossain, “Compact Planar Inverted F Antenna (PIFA) for Smart Wireless Body Sensors Networks,” vol. 2, no. 1, p. 63, 2020.
[72] Z.-J. Yang and S. Xiao, “A wideband implantable antenna for 2.4 GHz ISM band biomedical application,” in 2018 International Workshop on Antenna Technology (iWAT), 2018, pp. 1–3.
[73] A. Garhwal et al., “Wideband circular shaped fractal patch antenna for 2.45 GHz biomedical applications,” in 2019 IEEE Asia-Pacific Conference on Applied Electromagnetics (APACE), 2019, pp. 1–5.
[74] S. Muhammad, J. Jiat Tiang, S. Kin Wong, A. Iqbal, M. Alibakhshikenari, and E. Limiti, “Compact rectifier circuit design for harvesting GSM/900 ambient energy,” Electronics, vol. 9, no. 10, p. 1614, 2020.
[75] Hussein, Shamil H. “Design and Simulation of a High Performance CMOS Voltage Doublers using Charge Reuse Technique, ” Journal of Engineering Science and Technology 12.12, pp. 3344-3357, 2017
[76] D. Surender, T. Khan, F. A. Talukdar, A. De, Y. M. Antar, and A. P. Freundorfer, “Key components of rectenna system: A comprehensive survey,” IETE Journal of Research, pp. 1–27, 2020.
[77] Hussein, Shamil H., and Mohammad Tariq Yaseen, “Performance Evaluation of Low-Voltage CMOS Switched-Capacitor Circuit, ” in 2021 8th International Conference on Electrical and Electronics Engineering (ICEEE), IEEE, 2021.
[78] R. Pandey, A. K. Shankhwar, and A. Singh, “An improved conversion efficiency of 1.975 to 4.744 GHz rectenna for wireless sensor applications,” Progress In Electromagnetics Research C, vol. 109, pp. 217–225, 2021.
[79] S. Tian, X. Zhang, X. Wang, J. Han, and L. Li, “Recent advances in metamaterials for simultaneous wireless information and power transmission,” Nanophotonics, 2022.
[80] S. El Mattar, A. Baghdad, and A. Ballouk, “A Novel Two-Branch Dual-Band Rectifier for 2.45 GHz 5.8 GHz RFID Systems,” in WITS 2020, Springer, 2022, pp. 943–948.
[81] L. Zhu, J. Zhang, W. Han, L. Xu, and X. Bai, “A novel RF energy harvesting cube based on air dielectric antenna arrays,” International Journal of RF and Microwave Computer‐Aided Engineering, vol. 29, no. 1, p. e21636, 2019.
[82] J. Liu, M. Huang, Y. Lu, and R. P. Martins, “RF Rectifiers With Wide Incident Angle of Incoming Waves Based on Rat-Race Couplers,” IEEE Transactions on Microwave Theory and Techniques, 2021.
[83] I. S. A. Razak and Z. Hamid, “Optimization of Rectifying Circuit for RF Energy Scavenging,” ANP Journal of Social Science and Humanities, vol. 2, no. 1, pp. 60–67, 2021.
[84] S. Salleh, M. A. Zakariya, and R. M. A. Lee, “A Comparison Study of Rectifier Designs for 2.45 GHz EM Energy Harvesting,” Energy and Power Engineering, vol. 13, no. 2, pp. 81–89, 2021.
[85] Z. Zhou and Y. Chang, “A Novel 5.8 GHz Harmonic-suppressed Rectenna for Wireless Power Transmission,” in 2021 International Applied Computational Electromagnetics Society (ACES-China) Symposium, 2021, pp. 1–2.
[86] N. Hassan et al., “Design of dual‐band microstrip patch antenna with right‐angle triangular aperture slot for energy transfer application,” International Journal of RF and Microwave Computer‐Aided Engineering, vol. 29, no. 1, p. e21666, 2019.
[87] T. Oh, T. Lim, and Y. Lee, “A Self-Matching Rectifier Based on an Artificial Transmission Line for Enhanced Dynamic Range,” IEEE Transactions on Circuits and Systems I: Regular Papers, 2022.
[88] B. J. DeLong, A. Kiourti, and J. L. Volakis, “A radiating near-field patch rectenna for wireless power transfer to medical implants at 2.4 GHz,” IEEE Journal of Electromagnetics, RF and Microwaves in Medicine and Biology, vol. 2, no. 1, pp. 64–69, 2018.
[89] D. Surender, M. A. Halimi, T. Khan, F. A. Talukdar, S. K. Koul, and Y. M. Antar, “2.45 GHz Wi-Fi band operated circularly polarized rectenna for RF energy harvesting in smart city applications,” Journal of Electromagnetic Waves and Applications, vol. 36, no. 3, pp. 407–423, 2022.
[90] S. M. Asif, A. Iftikhar, J. W. Hansen, M. S. Khan, D. L. Ewert, and B. D. Braaten, “A novel RF-powered wireless pacing via a rectenna-based pacemaker and a wearable transmit-antenna array,” IEEE Access, vol. 7, pp. 1139–1148, 2018.
[91] S. Ding, S. Koulouridis, and L. Pichon, “Miniaturized implantable power transmission system for biomedical wireless applications,” Wireless Power Transfer, vol. 7, no. 1, pp. 1–9, 2020.
[92] A. Iqbal, M. Al-Hasan, I. B. Mabrouk, A. Basir, M. Nedil, and H. Yoo, “Biotelemetry and wireless powering of biomedical implants using a rectifier integrated self-diplexing implantable antenna,” IEEE Transactions on Microwave Theory and Techniques, vol. 69, no. 7, pp. 3438–3451, 2021.
[93] H. P. Paz, V. S. Silva, E. V. Cambero, H. X. Araújo, I. R. Casella, and C. E. Capovilla, “A survey on low power RF rectifiers efficiency for low cost energy harvesting applications,” AEU-International Journal of Electronics and Communications, vol. 112, p. 152963, 2019.
[94] A. Basir and H. Yoo, “Efficient wireless power transfer system with a miniaturized quad-band implantable antenna for deep-body multitasking implants,” IEEE Transactions on Microwave Theory and Techniques, vol. 68, no. 5, pp. 1943–1953, 2020.
[95] Z. He, H. Lin, H. Zhu, and C. Liu, “A compact high-efficiency rectifier with a simple harmonic suppression structure,” IEEE Microwave and Wireless Components Letters, vol. 30, no. 12, pp. 1177–1180, 2020.
[96] J. Kim, I. Park, and H. Ku, “Design of a Highly Efficient N-Stage Harmonic Terminated Voltage Multiplier for Wireless Power Transfer,” Energies, vol. 14, no. 21, p. 7203, 2021.
[97] J. Bae et al., “5.8 GHz high-efficiency RF–DC converter based on common-ground multiple-stack structure,” Sensors, vol. 19, no. 15, p. 3257, 2019.
[98] S. A. Rotenberg, S. K. Podilchak, P. D. H. Re, C. Mateo-Segura, G. Goussetis, and J. Lee, “Efficient rectifier for wireless power transmission systems,” IEEE Transactions on Microwave Theory and Techniques, vol. 68, no. 5, pp. 1921–1932, 2020.
[99] A. Trikolikar and S. Lahudkar, “Design & simulation of dual-band rectifier for ambient RF energy harvesting,” International Journal of Advanced Technology and Engineering Exploration, vol. 8, no. 83, p. 1383, 2021.
[100] M. U. Hoque, D. Kumar, Y. Audet, and Y. Savaria, “Design and Analysis of a 35 GHz Rectenna System for Wireless Power Transfer to an Unmanned Air Vehicle,” Energies, vol. 15, no. 1, p. 320, 2022.
[101] K. Bhatt, S. Kumar, P. Kumar, and C. C. Tripathi, “Highly efficient 2.4 and 5.8 GHz dual-band rectenna for energy harvesting applications,” IEEE Antennas and Wireless Propagation Letters, vol. 18, no. 12, pp. 2637–2641, 2019.
[102] M. T. Le, H. S. Vu, T. Truong, H. T. Vu, and Q. C. Nguyen, “Circularly polarized meandered-loop antenna for ambient RF energy harvesting system,” in 2020 IEEE Eighth International Conference on Communications and Electronics (ICCE), 2021, pp. 225–229.
[103] O. Assogba, A. K. Mbodji, S. Diagne, and A. K. Diallo, “Design of a Rectenna in 2.45 GHz Band Frequency for Energy Harvesting,” Energy and Power Engineering, vol. 13, no. 9, pp. 333–342, 2021.
[104] M. M. Fakharian, “A wideband rectenna using high gain fractal planar monopole antenna array for rf energy scavenging,” International Journal of Antennas and Propagation, vol. 2020, 2020.
[105] P. Sharma and A. K. Singh, “Compact ambient RF energy harvesting CPW Fed Antenna for WLAN,” in 2021 5th international conference on trends in electronics and informatics (ICOEI), 2021, pp. 596–600.
[106] D. Kumar and K. Chaudhary, “Design of an improved differentially fed antenna array for RF energy harvesting,” IETE Journal of Research, vol. 66, no. 3, pp. 353–358, 2020.
[107] N. Saranya and T. Kesavamurthy, “Design and performance analysis of broadband rectenna for an efficient RF energy harvesting application,” International Journal of RF and Microwave Computer‐Aided Engineering, vol. 29, no. 1, p. e21628, 2019.
[108] M. Palandoken and C. Gocen, “A modified Hilbert fractal resonator based rectenna design for GSM900 band RF energy harvesting applications,” International Journal of RF and Microwave Computer‐Aided Engineering, vol. 29, no. 1, p. e21643, 2019.
[109] O. Amjad, S. W. Munir, S. T. Imeci, and A. Ö. Ercan, “Design and implementation of dual band microstrip patch antenna for WLAN energy harvesting system,” Applied Computational Electromagnetics Society Journal, 2018.
[110] M. C. Derbal and M. Nedil, “A high gain dual band rectenna for RF energy harvesting applications,” Progress In Electromagnetics Research Letters, vol. 90, pp. 29–36, 2020.
[111] S. Muhammad, J. J. Tiang, S. K. Wong, A. Smida, R. Ghayoula, and A. Iqbal, “A dual-band ambient energy harvesting rectenna design for wireless power communications,” IEEE Access, vol. 9, pp. 99944–99953, 2021.
[112] A. Benayad and M. Tellache, “A compact energy harvesting multiband rectenna based on metamaterial complementary split ring resonator antenna and modified hybrid junction ring rectifier,” International Journal of RF and Microwave Computer‐Aided Engineering, vol. 30, no. 2, p. e22031, 2020.
[113] H. Mahfoudi, M. Tellache, and H. Takhedmit, “A wideband rectifier array on dual‐polarized differential‐feed fractal slotted ground antenna for RF energy harvesting,” International Journal of RF and Microwave Computer‐Aided Engineering, vol. 29, no. 8, p. e21775, 2019.
[114] N. Singh, S. Kumar, B. K. Kanaujia, M. T. Beg, and S. Kumar, “A compact broadband GFET based rectenna for RF energy harvesting applications,” Microsystem Technologies, vol. 26, no. 6, pp. 1881–1888, 2020.
[115] S. Bakogianni and S. Koulouridis, “A dual-band implantable rectenna for wireless data and power support at sub-GHz region,” IEEE Transactions on Antennas and Propagation, vol. 67, no. 11, pp. 6800–6810, 2019.
[116] S. Ding, S. Koulouridis, and L. Pichon, “Implantable rectenna system for biomedical wireless applications,” in 2019 IEEE Wireless Power Transfer Conference (WPTC), 2019, pp. 454–457.
[117] K. Zhang et al., “Near-field wireless power transfer to deep-tissue implants for biomedical applications,” IEEE Transactions on Antennas and Propagation, vol. 68, no. 2, pp. 1098–1106, 2019.
[118] H. Le-Huu and C. Seo, “Bipolar Spiral Midfield Wireless Power Transfer for Cardiac Implants Application,” IEEE Antennas and Wireless Propagation Letters, vol. 20, no. 9, pp. 1631–1635, 2021.