Zhang Jin, He Yilin, Boyer Cyrille, Kalantar-Zadeh Kourosh, Peng Shuhua, Chu Dewei, Wang Chun H
School of Mechanical and Manufacturing Engineering, University of New South Wales (UNSW) Sydney NSW 2052 Australia
School of Chemical Engineering, UNSW Building E8, Sydney Kensington NSW 2052 Australia
Nanoscale Adv. 2021 Jul 19;3(19):5465-5486. doi: 10.1039/d1na00501d. eCollection 2021 Sep 28.
Hybrid piezo-triboelectric nanogenerators constitute a new class of self-powered systems that exploit the synergy of piezoelectric and triboelectric mechanisms to improve energy harvesting efficencies and address the energy and power needs of portable and wearable electronic devices. The unique, synergistic electrical coupling mechanisms of piezoelectric and triboelectric effects increase the electric outputs and energy conversion efficiency of hybrid generators to beyond a linear summation of the contributions from individual triboelectric and piezoelectric mechanisms. Due to their large surface-area-to-volume ratios and outstanding mechanical, electronic and thermal properties, nanomaterials are favourable building blocks for constructing hybrid nanogenerators and represent a large family of flexible energy harvesting electronic structures and devices. Herein, we review the recent advances of hybrid piezo-triboelectric nanogenerators, with a particular focus on microstructure design, synergy mechanisms, and future research opportunities with significant potential for physiological monitoring, health care applications, transportation, and energy harvesting. The main strategies for improving electrical output performance are identified and examined, including novel nanostructures for increasing the contact area of the triboelectric pair, and nano-additives for enhancing the surface potential difference between the triboelectric pair and piezoelectric layers. Future applications and commercialization opportunities of these nanogenerators are also reviewed.
混合压电-摩擦纳米发电机构成了一类新型的自供电系统,该系统利用压电和摩擦电机制的协同作用来提高能量收集效率,并满足便携式和可穿戴电子设备的能源和电力需求。压电和摩擦电效应独特的协同电耦合机制将混合发电机的电输出和能量转换效率提高到超过单个摩擦电和压电机制贡献的线性总和。由于具有大的表面积与体积比以及出色的机械、电子和热性能,纳米材料是构建混合纳米发电机的理想构件,并且代表了一大类柔性能量收集电子结构和器件。在此,我们综述了混合压电-摩擦纳米发电机的最新进展,特别关注微观结构设计、协同机制以及在生理监测、医疗保健应用、交通运输和能量收集方面具有巨大潜力的未来研究机会。确定并研究了提高电输出性能的主要策略,包括用于增加摩擦电对接触面积的新型纳米结构,以及用于增强摩擦电对与压电层之间表面电势差的纳米添加剂。还综述了这些纳米发电机的未来应用和商业化机会。