Recent advances in nature inspired triboelectric nanogenerators for self-powered systems

Baosen Zhang, Yunchong Jiang, Tianci Ren, Baojin Chen, Renyun Zhang, Yanchao Mao
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Abstract

Triboelectric nanogenerators (TENGs) stand at the forefront of energy harvesting innovation, transforming mechanical energy into electrical power through triboelectrification and electrostatic induction. This groundbreaking technology addresses the urgent need for sustainable and renewable energy solutions, opening new avenues for self-powered systems. Despite their potential, TENGs face challenges such as material optimization for enhanced triboelectric effects, scalability, and improving conversion efficiency under varied conditions. Durability and environmental stability also pose significant hurdles, necessitating further research towards more resilient systems. Nature inspired TENG designs offer promising solutions by emulating biological processes and structures, such as the energy mechanisms of plants and the textured surfaces of animal skins. This biomimetic approach has led to notable improvements in material properties, structural designs, and overall TENG performance, including enhanced energy conversion efficiency and environmental robustness. The exploration into bio-inspired TENGs has unlocked new possibilities in energy harvesting, self-powered sensing, and wearable electronics, emphasizing reduced energy consumption and increased efficiency through innovative design. This review encapsulates the challenges and advancements in nature inspired TENGs, highlighting the integration of biomimetic principles to overcome current limitations. By focusing on augmented electrical properties, biodegradability, and self-healing capabilities, nature inspired TENGs pave the way for more sustainable and versatile energy solutions.
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用于自供电系统的自然启发三电纳米发电机的最新进展
三电纳米发电机(TENGs)站在能量采集创新的前沿,通过三电化和静电感应将机械能转化为电能。这项突破性技术满足了对可持续和可再生能源解决方案的迫切需求,为自供电系统开辟了新途径。尽管 TENGs 潜力巨大,但它也面临着各种挑战,如优化材料以增强三电效应、可扩展性以及在不同条件下提高转换效率。耐久性和环境稳定性也构成了重大障碍,需要进一步研究更具弹性的系统。受大自然启发的 TENG 设计通过模仿生物过程和结构(如植物的能量机制和动物皮肤的纹理表面),提供了前景广阔的解决方案。这种仿生方法显著改善了材料性能、结构设计和 TENG 的整体性能,包括提高了能量转换效率和环境稳健性。对生物启发腾博会登录的探索为能量收集、自供电传感和可穿戴电子产品带来了新的可能性,强调通过创新设计降低能耗和提高效率。本综述概括了受自然启发的 TENGs 所面临的挑战和取得的进步,重点介绍了如何结合仿生原理来克服当前的局限性。通过重点关注增强电性能、生物可降解性和自愈能力,受大自然启发的 TENG 为更可持续和多功能的能源解决方案铺平了道路。
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