Abstract
AbstractThe power consumption of portable gadgets, implantable medical devices (IMDs) and wireless sensor nodes (WSNs) has reduced significantly with the ongoing progression in low-power electronics and the swift advancement in nano and microfabrication. Energy harvesting techniques that extract and convert ambient energy into electrical power have been favored to operate such low-power devices as an alternative to batteries. Due to the expanded availability of radio frequency (RF) energy residue in the surroundings, radio frequency energy harvesters (RFEHs) for low-power devices have garnered notable attention in recent times. This work establishes a review study of RFEHs developed for the utilization of low-power devices. From the modest single band to the complex multiband circuitry, the work reviews state of the art of required circuitry for RFEH that contains a receiving antenna, impedance matching circuit, and an AC-DC rectifier. Furthermore, the advantages and disadvantages associated with various circuit architectures are comprehensively discussed. Moreover, the reported receiving antenna, impedance matching circuit, and an AC-DC rectifier are also compared to draw conclusions towards their implementations in RFEHs for sensors and biomedical devices applications.
Funder
Università degli Studi G. D'Annunzio Chieti Pescara
Publisher
Springer Science and Business Media LLC
Reference112 articles.
1. Basu A, Basu AK, Ghosh S, Bhattacharya S (2023) Introduction to MEMS Applications in Electronics and Engineering. MEMS Applications in Electronics and Engineering. AIP Publishing, pp 1–4
2. Automotive Sensors Market - Size, Growth &, Share https://www.mordorintelligence.com/industry-reports/automotive-sensors-market. Accessed 13 Sep 2023
3. Digital Health Market Size, Share &, Trends, Report (2030) https://www.grandviewresearch.com/industry-analysis/digital-health-market. Accessed 13 Sep 2023
4. Elfrink R, Kamel TM, Goedbloed M et al (2009) Vibration energy harvesting with aluminum nitride-based piezoelectric devices. J Micromechanics Microengineering 19:094005. https://doi.org/10.1088/0960-1317/19/9/094005
5. Khan F, Stoeber B, Sassani F (2014) Modeling and Simulation of Linear and Nonlinear MEMS Scale Electromagnetic Energy Harvesters for Random Vibration environments. Sci World J 2014:1–15. https://doi.org/10.1155/2014/742580
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