Energy-Adaptive Micro-Mechanical Systems Driven by Intelligent Materials: Experimental and Simulation Study Based on the Piezoelectric Effect
Keywords:
energy-adaptive MEMS, piezoelectric composites, multi-physics modeling, adaptive feedback controlAbstract
The miniaturization of mechanical and electronic systems has driven demand for self-powered micro-electro-mechanical systems (MEMS) in robotics, biomedical implants, and distributed IoT networks. Piezoelectric materials offer direct mechanical-to-electrical energy conversion, making them promising candidates for energy-autonomous microsystems. Existing studies largely optimize either material performance or system-level design independently, neglecting the integration of microstructural electromechanical behavior with adaptive energy regulation. Moreover, nonlinear piezoelectric responses under micro-scale cyclic loading remain insufficiently quantified, leading to 15-30% discrepancies between simulations and experiments. This work develops a hybrid PZT-PVDF composite thin film integrated into a cantilever MEMS with a closed-loop adaptive feedback controller. A coupled multi-physics finite element model links stress-strain fields to voltage output, while real-time stiffness adjustment maximizes energy harvesting efficiency under variable vibration conditions. Experimental validation spans 150 samples with cyclic loading across 50-500 Hz. The proposed adaptive MEMS achieves a peak voltage of 5.8 ± 0.2 V, output power density of 2.45 ± 0.05 mW·cm⁻³, and conversion efficiency of 77.1 ± 1.1%, representing a 28% improvement over non-adaptive hybrid systems. Voltage degradation after 10⁵ cycles is limited to 3.2 ± 0.4%, and the system converges to steady-state power within 12 ± 2 control iterations. By integrating material-level physics, multi-physics modeling, and adaptive control, this framework enhances energy conversion reliability and provides a reproducible approach for designing energy-autonomous MEMS suitable for micro-robots, implantable sensors, and distributed IoT devices.References
1. J. Cheng, N. Xue, B. Qiu, B. Qin, Q. Zhao, G. Fang, and X. Sun, "Recent Design and Application Advances in Micro-Electro-Mechanical System (MEMS) Electromagnetic Actuators," Micromachines, vol. 16, no. 6, p. 670, 2025. doi: 10.3390/mi16060670
2. Y. Li, Z. Sun, M. Huang, L. Sun, H. Liu, and C. Lee, "SelfSustained Artificial Internet of Things Based on Vibration Energy Harvesting Technology: Toward the Future EcoSociety," Advanced Energy and Sustainability Research, vol. 5, no. 11, p. 2400116, 2024. doi: 10.1002/aesr.202400116
3. M. Xu, Y. Liu, K. Yang, S. Li, M. Wang, J. Wang, and Y. Zhao, "Minimally invasive power sources for implantable electronics," In Exploration, February, 2024, p. 20220106. doi: 10.1002/exp.20220106
4. J. H. Zhang, Z. Li, Z. Liu, M. Li, J. Guo, J. Du, and Y. Yamauchi, "Inorganic Dielectric Materials Coupling Micro/Nanoarchitectures for StateoftheArt BiomechanicaltoElectrical Energy Conversion Devices," Advanced Materials, 2025.
5. Y. Zhang, M. Zhao, C. Tan, Z. Zhang, Y. Ouyang, L. Yang, and M. Dong, "Emerging NH3 MEMSSensing Techniques and Application," Advanced Materials Technologies, 2025.
6. A. Sur, S. Mondal, and S. Das, "Size-dependent vibrations of piezo-thermoelastic microbeam using dual-scale nonlocal strain gradient and memory-dependent thermoelasticity theories: A," Sur et al. Continuum Mechanics and Thermodynamics, vol. 37, no. 5, p. 78, 2025.
7. Y. Mao, Y. Wen, B. Liu, F. Sun, Y. Zhu, J. Wang, and A. Zhou, "Flexible wearable intelligent sensing system for wheelchair sports monitoring," Iscience, vol. 26, no. 11, 2023. doi: 10.1016/j.isci.2023.108126
8. S. S. Ba Hashwan, M. H. M. Khir, I. M. Nawi, M. R. Ahmad, M. Hanif, F. Zahoor, and M. Junaid, "A review of piezoelectric MEMS sensors and actuators for gas detection application," Discover Nano, vol. 18, no. 1, p. 25, 2023. doi: 10.1186/s11671-023-03779-8
9. D. M. Nivedhitha, and S. Jeyanthi, "Polyvinylidene fluoride, an advanced futuristic smart polymer material: A comprehensive review," Polymers for Advanced Technologies, vol. 34, no. 2, pp. 474-505, 2023. doi: 10.1002/pat.5914
10. Y. Xiao, B. Jiang, Z. Zhang, S. Ke, Y. Jin, X. Wen, and C. Ye, "A review of memristor: material and structure design, device performance, applications and prospects," Science and Technology of Advanced Materials, vol. 24, no. 1, p. 2162323, 2023. doi: 10.1080/14686996.2022.2162323
11. C. K. Kent, N. Ramakrishnan, and H. P. Kesuma, "Advancements in one-port surface acoustic wave (SAW) resonators for sensing applications: A review," IEEE Sensors Journal, vol. 24, no. 11, pp. 17337-17352, 2024.
12. S. Chatterjee, H. Paras, and C. H., "A review of nano and microscale heat transfer: An experimental and molecular dynamics perspective," Processes, vol. 11, no. 9, p. 2769, 2023.
13. A. Ghosh, A. A. H. Newaz, A. Al Baki, N. S. Awwad, H. A. Ibrahium, M. S. Hossain, and M. K. Rahman, "Solar power conversion: CuI hole transport layer and Ba 3 NCl 3 absorber enable advanced solar cell technology boosting efficiency over 30%," RSC advances, vol. 14, no. 33, pp. 24066-24081, 2024.
14. X. Wang, D. Chen, D. Li, C. Kou, and Y. Yang, "The development and progress of multi-physics simulation design for TSV-based 3D integrated system," Symmetry, vol. 15, no. 2, p. 418, 2023. doi: 10.3390/sym15020418
15. H. Zhang, T. Gao, C. Xu, Q. Wu, H. Song, and G. Huang, "Identification of hardening and fracture behaviors of titanium alloy by a hybrid digital image correlation and finite element method," Optics & Laser Technology, vol. 181, p. 111869, 2025. doi: 10.1016/j.optlastec.2024.111869

