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자료유형
학술저널
저자정보
Muhammad Basim (Sungkyunkwan University) Qurat ul Ain (Sungkyunkwan University) Khuram Shehzad (Sungkyunkwan University) Syed Adil Ali Shah (Sungkyunkwan University) Azam Ali (Sungkyunkwan University) ByeongGi Jang (Sungkyunkwan University) YoungGun Pu (Sungkyunkwan University) Joon-Mo Yoo (Sungkyunkwan University) Kang Yoon Lee (Sungkyunkwan University)
저널정보
대한전자공학회 JOURNAL OF SEMICONDUCTOR TECHNOLOGY AND SCIENCE Journal of Semiconductor Technology and Science Vol.22 No.5
발행연도
2022.10
수록면
304 - 325 (22page)
DOI
10.5573/JSTS.2022.22.5.304

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The design of radiofrequency energy harvesting (RFRH) circuit for wearable devices, wireless sensor networks, and IoT applications can be classified mainly into radio frequency to direct current (RF-DC) converter, a transmitter and receiver antenna, an impedance matching network, and a storage device or a load. By scavenging RF energy from the ambient environment, this developing technology allows low-power wireless devices to be self-sustaining and environment friendly. To eliminate the need for batteries, RFEH technology has become a dependable and promising alternative for extending the lifetime of power-constrained wireless networks. This paper mainly focused on the input and output power, Power conversion efficiency (PCE), and sensitivity. Due to the weak and limited signal strength of received RF power, high-efficiency state-of-the-art RF energy harvesters must be designed to provide sufficient DC supply voltage to wireless networks. We provide in-depth information on the system’s parameters. Optimum efficiency and maximum output power are the main concerns of an RFEH system. Therefore, RF Energy harvesting system review, antenna design, impedance matching, and RF-DC converter are presented in this paper to provide a deep insight into the design of the RFEH system. This article may help in identifying new research in the field of RF Energy Harvesting.

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Abstract
Ⅰ. INTRODUCTION
Ⅱ. REVIEW OF RF ENERGY HARVESTING SYSTEM
Ⅲ. ANTENNA DESIGN AND IMPEDANCE MATCHING NETWORK
Ⅳ. RF-DC CONVERTERS
Ⅴ. CONCLUSIONS
REFERENCES

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참고문헌 신청
J. Bito, R. Bahr, J. G. Hester, S. A. Nauroze, A. Georgiadis, and M. M. Tentzeris, “A Novel Solar and Electromagnetic Energy Harvesting System With a 3-D Printed Package for Energy Efficient Internet-of-Things Wireless Sensors,” IEEE Trans. Microw. Theory Tech., vol. 65, no. 5, pp. 1831-1842, May 2017, doi: 10.1109/TMTT.2017.2660487. Crossref M. Dini, A. Romani, M. Filippi, V. Bottarel, G. Ricotti, and M. Tartagni, “A Nanocurrent Power Management IC for Multiple Heterogeneous Energy Harvesting Sources,” IEEE Trans. Power Electron., vol. 30, no. 10, pp. 5665-5680, Oct. 2015, doi: 10.1109/TPEL.2014.2379622. Crossref S. Kim et al., “Ambient RF Energy-Harvesting Technologies for Self-Sustainable Standalone Wireless Sensor Platforms,” Proc. IEEE, vol. 102, no. 11, pp. 1649-1666, Nov. 2014, doi: 10.1109/ JPROC.2014.2357031. Crossref Y. Qiu, C. Van Liempd, B. O. het Veld, P. G. Blanken, and C. Van Hoof, “5μW-to-10mW input power range inductive boost converter for indoor photovoltaic energy harvesting with integrated maximum power point tracking algorithm,” in 2011 IEEE International Solid-State Circuits Conference, San Francisco, CA, USA, Feb. 2011, pp. 118-120. doi: 10.1109/ISSCC.2011.5746245. Crossref S.-Y. Kim et al., “A -20 to 30 dBm Input Power Range Wireless Power System With a MPPT-Based Reconfigurable 48% Efficient RF Energy Harvester and 82% Efficient A4WP Wireless Power Receiver With Open-Loop Delay Compensation,” IEEE Trans. Power Electron., vol. 34, no. 7, pp. 6803-6817, Jul. 2019, doi: 10.1109/ TPEL.2018.2872563. Crossref

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