Xiao Xiangting, Mei Yu, Deng Wentao, Zou Guoqiang, Hou Hongshuai, Ji Xiaobo
State Key Laboratory of Powder Metallurgy, College of Chemistry and Chemical Engineering, Central South University, Changsha, 410083, China.
Small Methods. 2024 Jun;8(6):e2201435. doi: 10.1002/smtd.202201435. Epub 2023 Feb 25.
The electric eel is known as the most powerful creature to generate electricity with a discharge voltage up to 860 V and peak current up to 1 A. These surprising properties are the results of billions of years of evolution on the electrical biological structure and bulk, and now have triggered great research interest in electric eel biomimetics for designing innovated configurations and components of energy storage and conversion devices. In this review, first, the bioelectrical behavior of electric eels is surveyed, followed by the physiological structure to reveal the discharge characteristics and principles of electric organs and electrocytes. Additionally, underlying electrochemical mechanisms and models for calculating the potential and current of electrocytes are presented. Central to this review is the recent progress of electric-eel-inspired innovations and applications for energy storage and conversion, particularly including novel power sources, triboelectric nanogenerators, and nanochannel ion-selective membranes for salinity gradient energy harvesting. Finally, insights on the challenges at the moment and the perspectives on the future research prospects are critically compiled. It is suggested that energy-related electric eel biomimetics will greatly boost the development of next-generation high performance, green, and functional electronics.
电鳗被誉为发电能力最强的生物,其放电电压高达860伏,峰值电流可达1安。这些惊人的特性是数十亿年电生物学结构和体积进化的结果,如今已引发了对电鳗仿生学的极大研究兴趣,旨在设计创新的储能和转换装置的结构与组件。在本综述中,首先,对电鳗的生物电行为进行了概述,接着介绍了其生理结构,以揭示电器官和电细胞的放电特性及原理。此外,还介绍了电细胞的潜在电化学机制以及计算其电势和电流的模型。本综述的核心是受电鳗启发在储能和转换方面的创新与应用的最新进展,尤其包括新型电源、摩擦纳米发电机以及用于盐度梯度能量收集的纳米通道离子选择性膜。最后,批判性地总结了当前面临的挑战以及对未来研究前景的展望。研究表明,与能源相关的电鳗仿生学将极大地推动下一代高性能、绿色和功能性电子产品的发展。