Interface Charge Regulation Enhancing Output and Durability of Triboelectric Nanogenerator for Efficient Wastewater Treatment

Author:

Liu Dongyang12,Zhou Linglin23,Gao Yikui23,Liu Di2,Qiao Wenyan23,Shi Jianxun12,Liu Xiaoru23,Zhao Zhihao234,Wang Zhong Lin2345,Wang Jie1234ORCID

Affiliation:

1. Center on Nanoenergy Research Institute of Science and Technology for Carbon Peak & Neutrality State Key Laboratory of Featured Metal Materials and Life‐cycle Safety for Composite Structures School of Physical Science & Technology Guangxi University Nanning 530004 China

2. Beijing Institute of Nanoenergy and Nanosystems Chinese Academy of Sciences Beijing 101400 China

3. School of Nanoscience and Engineering University of Chinese Academy of Sciences Beijing 100049 China

4. Guangzhou Institute of Blue Energy Knowledge City Huangpu District Guangzhou 510555 China

5. School of Materials Science and Engineering Georgia Institute of Technology Atlanta GA 30332 USA

Abstract

AbstractHarvesting mechanical energy through triboelectric nanogenerators (TENGs) for effectively purifying water, self‐powered wastewater treatment system presents a promising solution to address both energy and environmental crises. However, issues such as side‐discharge and wear, resulting from interfacial charge transfer, seriously hinder the output and durability of TENGs, and then reduce the efficiency of self‐powered wastewater treatment. Here, an interface charge regulation technique is introduced that simultaneously boosts both output performance and durability of TENG, enabling a greater efficiency in self‐powered wastewater treatment. The interface charge regulation method, suppressing side‐discharge around electrodes with an innovative insulator design as well as boosting charge density through secondary collection, fully utilizes surface charges for power output and results in minimum wear by reducing the interface electrostatic force. Surface charge density of 0.8 mC m−2 between the Ethyl tetrafluoro ethylene and copper (µ = 0.35), with a threefold enhancement under ambient conditions, and durability of 500 000 cycles (a 12.5‐fold enhancement) are achieved. Furthermore, the removal efficiency for proposed self‐powered sewage filter system is improved onefold, indicating the potential for sustainable and practical applications.

Funder

Fundamental Research Funds for the Central Universities

Postdoctoral Research Foundation of China

National Outstanding Youth Science Fund Project of National Natural Science Foundation of China

Key Technologies Research and Development Program

Publisher

Wiley

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