Rational Design Strategy for Triboelectric Nanogenerators Based on Electron Back Flow and Ionic Defects: The Case of Polytetrafluoroethylene

Author:

Fatti Giulio12ORCID,Ciniero Alessandra1ORCID,Ko Hyunseok3ORCID,Lee Han Uk45ORCID,Na Yujin6,Jeong Chang Kyu7ORCID,Lee Sang‐Geul8,Kwak Dongyub8,Park Kwi‐Il6ORCID,Cho Sung Beom45ORCID,Dini Daniele1ORCID

Affiliation:

1. Tribology Group Department of Mechanical Engineering Imperial College London London SW7 2BX UK

2. Center of Materials Digitalization Korea Institute of Ceramic Engineering and Technology (KICET) Jinju Gyeongsangnam‐do 52851 Republic of Korea

3. Materials Digitalization Center Korea Institute of Ceramic Engineering and Technology (KICET) Jinju Gyeongsangnam‐do 52851 Republic of Korea

4. Department of Energy Systems Research Ajou University Suwon Gyeonggi‐do 16499 Republic of Korea

5. Department of Materials Science and Engineering Ajou University Suwon Gyeonggi‐do 16499 Republic of Korea

6. School of Materials Science and Engineering Kyungpook National University Daegu 41566 Republic of Korea

7. Division of Advanced Materials Engineering Department of Energy Storage/Conversion Engineering of Graduate School & Hydrogen and Fuel Cell Research Center Jeonbuk National University Jeonju Jeonbuk 54896 Republic of Korea

8. Daegu Center Korea Basic Science Institute Daegu 41566 Republic of Korea

Abstract

AbstractThe lack of theoretical understanding of triboelectrification has hindered the development of energy harvesting technologies like triboelectric nanogenerators. Focusing on polytetrafluoroethylene, a material with a strong triboelectric output, a model predictive of its triboelectric behavior, driving the development of improved nanogenerators are formulated. With a combined computational‐experimental approach it is shown that defluorination enhances polytetrafluoroethylene nanoscale triboelectric charging. Then a model, explaining the macroscale triboelectric output as determined by the competition of two mechanisms is developed. Defluorination enhances charging while also reducing the interface gap, favoring the backflow of electrons, and possibly reducing charging. However, numerical analysis shows that backflow is negligible, aligning with the prediction of increased triboelectric output. By building triboelectric nanogenerators with defluorinated polytetrafluoroethylene samples, achieved by X‐ray irradiation, a one‐order‐of‐magnitude output increase is demonstrated. The predictive models, supported by experiments, lead to an improved strategy for designing effective energy harvesting devices and new applicative breakthroughs.

Funder

Ministry of Trade, Industry and Energy

Ministry of Science and ICT, South Korea

Publisher

Wiley

Subject

Electronic, Optical and Magnetic Materials

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