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用于先进生物机械能到电能转换装置的耦合微/纳米结构的无机介电材料

Inorganic Dielectric Materials Coupling Micro-/Nanoarchitectures for State-of-the-Art Biomechanical-to-Electrical Energy Conversion Devices.

作者信息

Zhang Jia-Han, Li Zhengtong, Liu Zeng, Li Mingxuan, Guo Jiaxin, Du Jinhua, Cai Changkun, Zhang Shaohui, Sun Ningning, Li Yong, Xu Xingtao, Hao Xihong, Yamauchi Yusuke

机构信息

School of Electronic Information Engineering, Electronic-Photonic Smart Sensing Device R&D Team, Inner Mongolia Key Laboratory of Intelligent Communication and Sensing and Signal Processing, Inner Mongolia University, Hohhot, 010021, China.

Key Laboratory of Hydrology Water Resources and Hydraulic Engineering, Hohai University, Nanjing, 210098, China.

出版信息

Adv Mater. 2025 Jul;37(28):e2419081. doi: 10.1002/adma.202419081. Epub 2025 May 3.

Abstract

Biomechanical-to-electrical energy conversion technology rapidly developed with the emergence of nanogenerators (NGs) in 2006, which proves promising in distributed energy management for the Internet of Things, self-powered sensing, and human-computer interaction. Recently, researchers have increasingly integrated inorganic dielectric materials (IDMs) and micro-/nanoarchitectures into various types of NGs (i.e., triboelectric, piezoelectric, and flexoelectric NGs). This strategy significantly enhances the electrical performance, enabling near-theoretical energy harvesting capability and precise multiple physiological information detection. However, because micro-/nanoarchitectured IDMs function differently in each type of NG, numerous studies have focused on a single NG type and lack a unified perspective on their role across all types of biomechanical energy NGs. In this review, from an overall theoretical root of NGs, the performance enhancement mechanisms and effects of designs of IDMs coupling micro-/nanoarchitectures of various kinds of biomechanical energy NGs are systematically summarized. Next, advanced applications in human energy scavenging and physiological signal sensing are delved into. Finally, challenges and rational guidelines for designing future devices are discussed. This work provides researchers with in-depth insight into the development of high-performance personalized high-entropy power supplies and sensor networks via biomechanical-to-electrical energy conversion technologies based on IDMs coupling micro-/nanoarchitectures.

摘要

随着2006年纳米发电机(NGs)的出现,生物机械能到电能的转换技术迅速发展,这在物联网的分布式能源管理、自供电传感和人机交互方面显示出了前景。最近,研究人员越来越多地将无机介电材料(IDMs)和微/纳米结构集成到各种类型的NGs中(即摩擦电、压电和挠曲电NGs)。这种策略显著提高了电性能,实现了近乎理论的能量收集能力和精确的多种生理信息检测。然而,由于微/纳米结构的IDMs在每种类型的NG中功能不同,许多研究都集中在单一类型的NG上,缺乏对它们在所有类型的生物机械能NGs中作用的统一观点。在这篇综述中,从NGs的整体理论根源出发,系统地总结了IDMs与各种生物机械能NGs的微/纳米结构耦合设计的性能增强机制和效果。接下来,深入探讨了在人体能量收集和生理信号传感方面的先进应用。最后,讨论了设计未来设备的挑战和合理指导方针。这项工作为研究人员提供了深入的见解,以通过基于IDMs与微/纳米结构耦合的生物机械能到电能转换技术,开发高性能的个性化高熵电源和传感器网络。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e3af/12272043/a44251f98c5b/ADMA-37-2419081-g018.jpg

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