REFERENCES
1. Sreejith, S.; Panigrahy, A. K.; Ajayan, J.; et al. IoT sensor-based systems in real-time monitoring of health and environment: a review. J. Korean. Phys. Soc. 2025, 87, 1-27.
2. Roostaei, J.; Wager, Y. Z.; Shi, W.; Dittrich, T.; Miller, C.; Gopalakrishnan, K. IoT-based edge computing (IoTEC) for improved environmental monitoring. Sustain. Comput. Inform. Syst. 2023, 38, 100870.
3. Hu, Y.; Tang, R.; Zeng, F.; et al. Self-layered triboelectric nanogenerator for ultrahigh electricity supply. Adv. Mater. 2025, 38, e14186.
4. Zheng, C.; Liang, C.; Wen, H.; et al. Magnetotropic hybrid generator with self-switching mechanism for long-term forest fire prevention. Adv. Mater. Technol. 2024, 9, 2400340.
5. Zhang, F.; Li, D.; Li, G.; Xu, S. New horizons in smart plant sensors: key technologies, applications, and prospects. Front. Plant. Sci. 2025, 15, 1490801.
6. Cai, J.; Wang, H.; Liu, Z.; Zhang, X. Structural design and optimization techniques for the rotational triboelectric nanogenerators - an overview. Renew. Sustain. Energy. Rev. 2026, 232, 116784.
7. Trinh, V.; Chung, C. Use of triboelectric nanogenerators in advanced hybrid renewable energy systems for high efficiency in sustainable energy production: a review. Processes 2024, 12, 1964.
8. Wu, Y.; Qu, J.; Chu, P. K.; Shin, D.; Luo, Y.; Feng, S. Hybrid photovoltaic-triboelectric nanogenerators for simultaneously harvesting solar and mechanical energies. Nano. Energy. 2021, 89, 106376.
9. Zeng, Q.; Luo, Y.; Zhang, X.; et al. A bistable triboelectric nanogenerator for low-grade thermal energy harvesting and solar thermal energy conversion. Small 2023, 19, 2301952.
10. Yu, G.; Ji, P.; Gao, X.; et al. Efficient pedestrian-level wind energy harvesting using a hybridized technology. Energy. Environ. Sci. 2025, 18, 8280-91.
11. Huang, J.; Shao, J.; Zhong, W.; et al. A wind bell inspired triboelectric nanogenerator for extremely low‑speed and omnidirectional wind energy harvesting. Small. Methods. 2024, 8, 2400078.
12. Zhao, C.; Zhang, Y.; Cui, L.; et al. Multifunctional origami-structured triboelectric nanogenerators based on zinc coordination polymers for self-powered photoinduced oxidation systems toward green energy harvesting. Energy. Mater. 2026, 6, 600023.
13. Tang, W.; Li, H.; Li, J.; et al. Rattle drum-inspired triboelectric nanogenerator with enhanced output using charge dispatch and magnetic repulsion pendulum. Nat. Commun. 2025, 16, 9539.
14. Li, J.; Chen, J.; Guo, H. Triboelectric nanogenerators for harvesting wind energy: recent advances and future perspectives. Energies 2021, 14, 6949.
15. Liu, D.; Luo, J.; Huang, L.; et al. Triboelectric nanogenerators as a practical approach for wind energy harvesting: mechanisms, designs, and applications. Nano. Energy. 2025, 136, 110767.
16. Zhou, Y.; Lu, P.; Zhou, X.; et al. Triboelectric wind sensors: fundamentals, progress, and perspectives. Nano. Energy. 2024, 131, 110209.
17. Ren, Z.; Wu, L.; Pang, Y.; Zhang, W.; Yang, R. Strategies for effectively harvesting wind energy based on triboelectric nanogenerators. Nano. Energy. 2022, 100, 107522.
18. Li, Y.; Deng, H.; Wu, H.; et al. Rotary wind-driven triboelectric nanogenerator for self-powered airflow temperature monitoring of industrial equipment. Adv. Sci. 2024, 11, 2307382.
19. Zhang, S.; Shi, Z.; Da, Y.; et al. Harvesting multidirectional wind energy based on flow-induced vibration triboelectric nanogenerator with directional tuning mechanism. Sens. Actuator. A. Phys. 2024, 379, 115974.
20. Hu, X.; Feng, J.; Liang, C.; et al. Round-trip oscillation triboelectric nanogenerator with high output response and low wear to harvest random wind energy. Nano. Res. 2023, 16, 11259-68.
21. Xiong, T.; Xu, Z.; He, Q.; et al. Direction-adaptive triboelectric-electromagnetic hybrid nanogenerator for harvesting omnidirectional breeze wind energy. Nano. Energy. 2025, 143, 111323.
22. Zhou, H.; Cao, Z.; Wang, Z. L.; Wu, Z. A tightly coupled electromagnetic-triboelectric hybrid generator for wind energy harvesting and environmental monitoring. Nano. Today. 2025, 61, 102628.
23. Wang, W.; Yu, S.; Li, P.; Li, Q. Hybrid electromagnetic-triboelectric nanogenerator based on BaTiO3-CNT-PDMS composite for wind energy harvesting. Adv. Mater. Technol. 2026, 11, e02077.
24. Zhang, X.; Wu, H.; Chen, X.; et al. Self-adaptive omnidirectional wind domain energy harvesting based on dual-mode complementary strategy of wind-induced vibration. Adv. Mater. 2025, 37, e12044.
25. Qu, J.; Zhong, H.; Bao, N.; et al. A novel triboelectric generator based on wind-induced film vibration for harvesting breeze energy. Nano. Energy. 2025, 140, 111005.
26. Du, X.; Han, Y.; Guo, D.; et al. Hybrid piezo-triboelectric wind energy harvesting mechanism with flag-dragging the cantilever beam vibration. Nano. Energy. 2024, 131, 110274.
27. Han, Y.; Wu, F.; Du, X.; et al. Enhance vortices vibration with Y-type bluff body to decrease arousing wind speed and extend range for flag triboelectric energy harvester. Nano. Energy. 2024, 119, 109063.
28. Zhang, L.; Meng, B.; Tian, Y.; et al. Vortex-induced vibration triboelectric nanogenerator for low speed wind energy harvesting. Nano. Energy. 2022, 95, 107029.
29. Dong, L.; Tang, Q.; Zhao, C.; et al. Flag-type hybrid nanogenerator utilizing flapping wakes for consistent high performance over an ultra-broad wind speed range. Nano. Energy. 2024, 119, 109057.
30. Wang, Y.; Cai, S.; Wang, Y.; et al. Study on dynamics and power generation performance coupling of galloping-based triboelectric nanogenerator for harvesting broadband wind energy. Nano. Energy. 2024, 130, 110126.
31. Shao, J.; Jiang, T.; Wang, Z. Theoretical foundations of triboelectric nanogenerators (TENGs). Sci. China. Technol. Sci. 2020, 63, 1087-109.
32. Ren, Z.; Wang, Z.; Wang, F.; Li, S.; Wang, Z. L. Vibration behavior and excitation mechanism of ultra-stretchable triboelectric nanogenerator for wind energy harvesting. Extreme. Mech. Lett. 2021, 45, 101285.
33. Zeng, Q.; Wu, Y.; Tang, Q.; et al. A high-efficient breeze energy harvester utilizing a full-packaged triboelectric nanogenerator based on flow-induced vibration. Nano. Energy. 2020, 70, 104524.
34. Zhang, C.; Liu, Y.; Zhang, B.; et al. Harvesting wind energy by a triboelectric nanogenerator for an intelligent high-speed train system. ACS. Energy. Lett. 2021, 6, 1490-9.
35. He, L.; Zhang, C.; Zhang, B.; et al. A dual-mode triboelectric nanogenerator for wind energy harvesting and self-powered wind speed monitoring. ACS. Nano. 2022, 16, 6244-54.
36. Liu, D.; Li, C.; Chen, P.; Zhao, X.; Tang, W.; Wang, Z. L. Sustainable long-term and wide-area environment monitoring network based on distributed self-powered wireless sensing nodes. Adv. Energy. Mater. 2022, 13, 2202691.
37. Zhou, H.; Wei, X.; Wang, B.; Zhang, E.; Wu, Z.; Wang, Z. L. A multi-layer stacked triboelectric nanogenerator based on a rotation-to-translation mechanism for fluid energy harvesting and environmental protection. Adv. Funct. Mater. 2022, 33, 2210920.
38. Li, Z.; Ee, Z. Y.; Gan, W. C.; et al. A magnet-actuated contact-sliding-separation mode triboelectric nanogenerator. Smart. Mater. Struct. 2025, 34, 125029.
39. He, W.; Liu, Y.; Jin, J.; et al. High durability sliding TENG with enhanced output achieved by capturing multiple region charges for harvesting wind energy. Nano. Micro. Lett. 2026, 18, 199.
40. He, Y.; Tang, L.; Zhang, H.; Chen, J.; Yang, X. Rotation-to-translation enabled robust triboelectric nanogenerator for wind harvesting and sensing. Adv. Mater. Technol. 2024, 9, 2302061.
41. Shu, L.; Fang, L.; Wang, F.; et al. Wind speed adaptive triboelectric nanogenerator with low start-up wind speed, enhanced durability and high power density via the synergistic mechanism of magnetic and centrifugal forces for intelligent street lamp system. Nano. Energy. 2025, 133, 110487.
42. Zhu, M.; Zhu, J.; Zhu, J.; et al. Bladeless wind turbine triboelectric nanogenerator for effectively harvesting random gust energy. Adv. Energy. Mater. 2024, 14, 2401543.






