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基于离子二极管整流和电极化学调控的长寿命湿气驱动发电机

A Long Life Moisture-Enabled Electric Generator Based on Ionic Diode Rectification and Electrode Chemistry Regulation.

作者信息

Fu Chunqiao, Zhou Jian, Lu Xulei, Feng Haochen, Zhang Yong, Shang Kedong, Jiang Zhongbao, Yao Yuming, He Qi-Chang, Yang Tingting

机构信息

Tribology Research Institute, School of Mechanical Engineering, Southwest Jiaotong University, Chengdu, 610031, P. R. China.

Univ Gustave Eiffel, MSME, CNRS UMR 8208, Marne-la-Vallée, F-77454, France.

出版信息

Adv Sci (Weinh). 2024 Apr;11(15):e2305530. doi: 10.1002/advs.202305530. Epub 2024 Feb 14.

Abstract

Considerable efforts have recently been made to augment the power density of moisture-enabled electric generators. However, due to the unsustainable ion/water molecule concentration gradients, the ion-directed transport gradually diminishes, which largely affects the operating lifetime and energy efficiency of generators. This work introduces an electrode chemistry regulation strategy into the ionic diode-type energy conversion structure, which demonstrates 1240 h power generation in ambient humidity. The electrode chemical regulation can be achieved by adding Cl. The purpose is to destroy the passivation film on the electrode interface and provide a continuous path for ion-electron coupling conduction. Moreover, this device simultaneously satisfies the requirements of fast trapping of moisture molecules, high rectification ratio transport of ions, and sustained ion-to-electron current conversion. A single device can deliver an open-circuit voltage of about 1 V and a peak short-circuit current density of 350 µA cm. Finally, the first-principle calculations are carried out to reveal the mechanism by which the electrode surface chemistry affects the power generation performance.

摘要

最近人们为提高基于湿度的发电机的功率密度付出了巨大努力。然而,由于离子/水分子浓度梯度不可持续,离子定向传输逐渐减弱,这在很大程度上影响了发电机的运行寿命和能量效率。这项工作将电极化学调控策略引入离子二极管型能量转换结构中,该结构在环境湿度下实现了1240小时的发电。电极化学调控可通过添加Cl来实现。目的是破坏电极界面上的钝化膜,并为离子-电子耦合传导提供连续路径。此外,该装置同时满足了快速捕获水分分子、高整流比离子传输以及持续的离子-电子电流转换的要求。单个装置可提供约1 V的开路电压和350 μA cm的峰值短路电流密度。最后,进行了第一性原理计算,以揭示电极表面化学影响发电性能的机制。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8b5c/11022712/81b18d91fb58/ADVS-11-2305530-g001.jpg

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