Design and Optimisation of a 2.4 GHz Radio-Frequency Energy Harvesting System for Low-Power Internet of Things (IoT) Applications

Authors

John Nyamekye Ansah.

Department of Electrical and Electronic Engineering, University of Mines and Technology, Tarkwa (Ghana)

John Kojo Annan.

Department of Electrical and Electronic Engineering, University of Mines and Technology, Tarkwa (Ghana)

Shiphrah Ohene Adu

Department of Electrical and Electronic Engineering, University of Mines and Technology, Tarkwa (Ghana)

Article Information

DOI: 10.51584/IJRIAS.2025.100900033

Subject Category: Engineering & Technology

Volume/Issue: 10/9 | Page No: 340-357

Publication Timeline

Submitted: 2025-09-06

Accepted: 2025-09-12

Published: 2025-10-12

Abstract

This paper presents the design and performance evaluation of a highly efficient 2.4 GHz Radio-Frequency Energy Harvesting (RF-EH) system specifically modified to meet the energy requirements of low-power Internet of Things (IoT) applications. This system incorporates a high-gain 4x4 Microstrip Patch Antenna (MPA) Array, a single-stub Matching Network (MN) and a 5-stage RF-to-DC rectifier using the Cockcroft-Walton Voltage Multiplier (CW-VM) topology. The antenna is mounted on Rogers RT5880 substrate with a thickness of 1.588 mm and a relative permittivity of 2.2, and fed by a 50-Ω microstrip feed line. The antenna was designed using Computer Simulation Technology (CST) Studio Suite 2019, while the rectifier and MN were implemented in Keysight Advanced Design System (ADS) 2022. The antenna achieved a high gain of 19.29 dBi and a directivity of 20.01 dBi, with radiation and total efficiencies exceeding 84 %. The antenna demonstrated a highly directive E-Plane radiation pattern with a narrow beamwidth of 19.4° and a side lobe level of -13.8 dB, indicating a more focused reception of RF signals and a good suppression of unwanted radiation. The rectifier achieved a peak Power Conversion Efficiency (PCE) of 89.913 % and a peak output voltage of 16.424 V at an input power of 17.5 dBm. More importantly, low-input powers ranging from -20 dBm to 0 dBm produced usable DC output voltages from 0.456 V to 4.144 V, respectively, demonstrating strong suitability for IoT applications operating under limited RF conditions. These results demonstrated the system’s potential for integration into large-scale indoor and outdoor IoT networks. The proposed system supports sustainable, maintenance-free and battery-less deployments, advancing the development of autonomous wireless systems.

Keywords

Radio-Frequency, Energy Harvesting, Antenna, Matching Network, Rectifier Circuit, IoT Applications

Downloads

References

1. Moloudian, G., Hosseinifard, M., Kumar, S., Simorangkir, R. B. V. B., Buckley, J. L., Song, C., Fantoni, G and O’Flynn, B. (2024), “RF Energy Harvesting Techniques for Battery-less Wireless Sensing, Industry 4.0 and Internet of Things: A Review”, IEEE Sensors Journal, Vol. 24, No. 5, pp. 1 – 14. [Google Scholar] [Crossref]

2. Kanboz, B. and Palandöken, M. (2023), “Microstrip Patch Antenna Array Design for RF Energy Harvesting Applications”, European Journal of Science and Technology, Vol. 3, No. 49, pp. 34 – 37. [Google Scholar] [Crossref]

3. Zeng, M., Li, Z., Ding, Y. and Lin, X. (2022), “A Wide‐Band Antenna with Dual Open Rings Resonator for RF Energy Harvesting”, Microwave and Optical Technology Letters, Vol. 64, No. 11, pp. 2019 – 2023. [Google Scholar] [Crossref]

4. Agrahari, R., Singh, S., Samantaray, D., Kumar, B., Bhattacharyya, S., Mahto, M. and Jain, P. K. (2023), “Triple‐Band Meta-surface Absorber for RF Energy Harvesting Applications”, Microwave and Optical Technology Letters, Vol. 65, No. 8, pp. 2252 – 2261. [Google Scholar] [Crossref]

5. Lee, Y. C., Ramiah, H., Choo, A., Churchill, K. K. P., Lai, N. S., Lim, C. C., Chen, Y., Mak, P. and Martins, R. P. (2023), “High-Performance Multiband Ambient RF Energy Harvesting Front-End System for Sustainable IoT Applications – A Review”, IEEE Access, Vol. 11, No. 1, pp. 11143 – 11164. [Google Scholar] [Crossref]

6. Mehta, P. and Nella, A. (2024), “Dual-Band Low-Power RF-to-DC Signal Converter Circuits for Energy Harvesting”, AIP Advances, Vol. 14, No. 7, pp. 1 – 13. [Google Scholar] [Crossref]

7. Ansah, J. N. and Annan, J. K. (2024), “A Novel Triangular Configuration of a Rectangular Patch Antenna Array For 2.45 GHz RF Energy Harvesting”, International Research Journal of Engineering and Technology, Vol. 11, No. 11, pp. 420 – 427. [Google Scholar] [Crossref]

8. El-Issawi, M. L., Konditi, D. B. O. and Usman, A. D. (2024), “Design of an Enhance Dual-Band Microstrip Patch Antenna with Defected Ground Structures for WLAN and WiMAX”, Indonesian Journal of Electrical Engineering and Computer Science, Vol. 35, No. 1, pp. 165 – 174. [Google Scholar] [Crossref]

9. Küçükcan, S. and Kaya, A. (2022), “Dual-Band Microstrip Patch Antenna Design for Wi-Fi Applications”, European Journal of Science and Technology, Vol. 2, No. 34, pp. 661 – 664. [Google Scholar] [Crossref]

10. Luo, Y., Pu, L., Wang, G. and Zhao, Y. (2019), “RF Energy Harvesting Wireless Communications: RF Environment, Device Hardware and Practical Issues”, Sensors, Vol. 19, No. 13, 3010pp. [Google Scholar] [Crossref]

11. Huang, Y. and Boyle, K. (2008), Antennas: From Theory to Practice, John Wiley and Sons Ltd, Chichester, United Kingdom, (ed.), 2nd Edition, pp. 1 – 363. [Google Scholar] [Crossref]

12. Wijayanti, A., Putri, T. L., Puspitorini, O. and Siswandari, N. A. (2024), “Design of Microstrip Planar Array Antenna for Wireless Sensor Device Charging at Frequency 2300 MHz”, Proceedings of the International Conference on Applied Science and Technology on Engineering Science 2023 (iCAST-ES 2023), Dordrecht, Netherlands, pp. 493–505. [Google Scholar] [Crossref]

13. Kuşin, Y. E. and Palandöken, M. (2023), “Machine Learning Based B-Shaped Monopole Antenna for RF Energy Harvesting Applications”, International Journal of Advanced Natural Sciences and Engineering Researches, Vol. 7, No. 2, pp. 1 – 8. [Google Scholar] [Crossref]

14. Sharma, T. and Saini, G. (2016), “Microstrip Antenna Array for RF Energy Harvesting System”, International Journal of Advanced Information Science and Technology, Vol. 45, No. 45, pp. 145 – 149. [Google Scholar] [Crossref]

15. Jayanthy, T., Harini, J., Haseena, A. and Neha, C. L. (2024), “Design and Analysis of Triangular Patch Antenna Array”, International Journal of Engineering Applied Sciences and Technology, Vol. 8, No. 12, pp. 123 – 128. [Google Scholar] [Crossref]

16. Kabeel, A. A., Hussein, A. H., ElMaghrabi, A. E. and Elabd, R. H. (2023), “Design of a Circular Concentric Microstrip Patch Antenna Array for Wi-Fi Band Energy Harvesting”, Journal of Engineering Research, Vol. 7, No. 5, pp. 156 – 159. [Google Scholar] [Crossref]

17. Nnamdi, U., Omijeh, B. and Asianuba, I. (2023), “Design and Optimisation of a 2.4 GHz Antenna Array for Energy Harvesting”, European Journal of Theoretical and Applied Sciences, Vol. 1, No. 6, pp. 676 – 683. [Google Scholar] [Crossref]

18. Subbyal, H., Ali, W. and Liguo, S. (2022), “Compact Antenna Integrated with a Greinacher Voltage Multiplier for Ambient Energy Harvesting Applications”, International Journal of RF and Microwave Computer-Aided Engineering, Vol. 32, No. 12, pp. 1 – 10. [Google Scholar] [Crossref]

19. Pramono, S., Shidiq, D. D., Ibrahim, M. H., Adriyanto, F. and Hikmaturokhman, A. (2021), “RF Energy Harvesting using a Compact Rectenna with an Antenna Array at 2.45 GHz for IoT Applications”, Journal of Electrical Engineering, Vol. 72, No. 3, pp. 159 – 167. [Google Scholar] [Crossref]

20. Khan, N. U., Ullah, S., Khan, F. U. and Merla, A. (2024), “Development of 2400-2450 MHz Frequency Band RF Energy Harvesting System for Low-Power Device Operation”, Sensors, Vol. 24, No. 10, pp. 1 – 13. [Google Scholar] [Crossref]

21. Omara, F. A., Ali, W. A. E., Eltrass, A. S. and Abbasy, N. H. (2024), “Design of a 2.45 GHz Rectenna Based on High-Gain 2-Element Array Antenna and 7-stage Voltage-Doubler Rectifier for Energy Harvesting Applications”, Physica Scripta, Vol. 99, No. 12, pp. 1 – 20. [Google Scholar] [Crossref]

Metrics

Views & Downloads

Similar Articles