Open Access
Issue
ITM Web Conf.
Volume 82, 2026
International Conference on NextGen Engineering Technologies and Applications for Sustainable Development (ICNEXTS’25)
Article Number 01006
Number of page(s) 6
Section Electronics Design
DOI https://doi.org/10.1051/itmconf/20268201006
Published online 04 February 2026
  1. Y. Zhang, T. Wang, A. Luo, Y. Chen, and S. Wang, Synchronized switch harvesting applied to piezoelectric energy harvesting, IEEE Trans. Ind. Electron. 67, 3899–3908 (2020). [Google Scholar]
  2. A. Kumar and B. Singh, Adaptive load matching for piezoelectric energy harvesters, IEEE Trans. Power Electron. 35, 1888–1897 (2020). [Google Scholar]
  3. S. Lee, B. Youn, and B. Jung, Robust segment-type energy harvester and its application to wireless sensor networks, Smart Mater. Struct. 29, 055009 (2020). [Google Scholar]
  4. D. Zhu, M. Tudor, and S. Beeby, Strategies for increasing the operating frequency range of vibration energy harvesters, J. Microelectromech. Syst. 19, 1309–1324 (2010). [Google Scholar]
  5. E. Lefeuvre, A. Badel, C. Richard, L. Petit, and D. Guyomar, A comparison between several vibration-powered piezoelectric generators for standalone systems, Sens. Actuators A Phys. 126, 405–416 (2006). [Google Scholar]
  6. S. Roundy, P. Wright, and J. Rabaey, A study of low-level vibrations as a power source for wireless sensor nodes, Comput. Commun. 26, 1131–1144 (2003). [Google Scholar]
  7. H. Liu, C. Zhong, C. Lee, S. Lee, and L. Lin, A comprehensive review on piezoelectric energy harvesting technology, Nano Energy 71, 104631 (2020). [Google Scholar]
  8. J. Dicken, P. Mitcheson, I. Stoianov, and E. Yeatman, Power-extraction circuits for piezoelectric energy harvesters in miniature and low-power applications, IEEE Trans. Power Electron. 27, 4514–4529 (2012). [Google Scholar]
  9. Y. Tan, Y. Dong, and X. Wang, Review of MEMS-based piezoelectric energy harvesting techniques, Sustain. Cities Soc. 71, 102992 (2021). [Google Scholar]
  10. G. K. Ottman, H. F. Hofmann, A. C. Bhatt, and G. A. Lesieutre, Adaptive piezoelectric energy harvesting circuit for wireless remote power supply, IEEE Trans. Power Electron. 17, 669–676 (2002). [Google Scholar]
  11. L. Gu and C. Livermore, Impact-driven, frequency up-converting coupled vibration energy harvester for low-frequency operation, Smart Mater. Struct. 20, 045004 (2011). [Google Scholar]
  12. M. Ferrari, V. Ferrari, M. Guizzetti, B. Ando, S. Baglio, and C. Trigona, Improved energy harvesting from wideband vibrations by nonlinear piezoelectric converters, Sens. Actuators A Phys. 162, 425–431 (2010). [Google Scholar]
  13. R. Kashyap, T. R. Lenka, and S. Baishya, A comprehensive analysis of maximum power point tracking techniques for piezoelectric energy harvesting systems, IEEE Access 9, 142710–142730 (2021). [Google Scholar]
  14. P. D. Mitcheson, E.M. Yeatman, G. K. Rao, A. S. Holmes, and T. C. Green, Energy harvesting from human and machine motion for wireless electronic devices, Proc. IEEE 96, 1457–1486 (2008). [Google Scholar]
  15. A. Erturk and D.J. Inman, An experimentally validated bimorph cantilever model for piezoelectric energy harvesting from base excitations, Smart Mater. Struct. 18, 025009 (2009). [Google Scholar]

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