Stability bottleneck of organic field-effect transistors: from mechanism to solution

能量收集 机械能 摩擦电效应 能量转换 瓶颈 电势能 能量(信号处理) 电气工程 材料科学 计算机科学 机械工程 功率(物理) 工程类 物理 复合材料 嵌入式系统 热力学 量子力学
作者
Yinan Huang,Zhongwu Wang,Xiaosong Chen,Liqiang Li,Wenping Hu
出处
期刊:Science Bulletin [Elsevier BV]
卷期号:68 (14): 1469-1473 被引量:6
标识
DOI:10.1016/j.scib.2023.06.016
摘要

Mechanical energy harvesting transforms various forms of mechanical energy, including ocean waves, wind, and human motions, into electrical energy, providing a viable solution to address the depletion of fossil fuels and environmental problems. However, one major obstacle for the direct conversion of mechanical energy into electricity is the low frequency of the majority of mechanical energy sources (≤5 Hz), resulting in low energy conversion efficiency, output power and output current. Over recent years, a numerous innovative technologies have been reported to enable improved energy harvesting utilizing various mechanisms. This review aims to present an in-depth analysis of the research progress in low-frequency energy harvesting technologies that rely on triboelectric, electrochemical, piezoelectric, and dielectric elastomer effects. The discussion commences with an overview of the difficulties associated with low-frequency energy harvesting. The critical aspects that impact the low-frequency performance of mechanical energy harvesters, including working mechanisms, environmental factors, and device compositions, are elucidated, while the advantages and disadvantages of different mechanisms in low-frequency operation are compared and summarized. Moreover, this review expounds on the strategies that can improve the low-frequency energy harvesting performance through the modulations of material compositions, structures, and devices. It also showcases the applications of mechanical energy harvesters in energy harvesting via waves, wind, and human motions. Finally, the recommended choices of mechanical energy harvesters with different mechanisms for various applications are offered, which can assist in the design and fabrication process.

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