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PTFE-Based Triboelectric Nanogenerator with All-Symmetric Tribolayers Enabled by Self-Excited Charge Injection for
Zhaoyue Xia1, Huang Lin1, Hui Yang1
1School of Materials Science and Engineering, State Key Lab of Silicon and Advanced Semiconductor Materials, Zhejiang University, Hangzhou, Zhejiang310058, People's Republic of China.
Abstract:
Conventional triboelectric nanogenerators (TENGs) generally rely on asymmetric contact pairs with pronounced triboelectric-polarity differences, such as polymer/metal combinations, which limits device stability and lifetime in corrosive environments. Herein, we propose an all-symmetric triboelectric nanogenerator (AS-TENG) based on identical polytetrafluoroethylene (PTFE) tribolayers. The AS-TENG consists of two identical Cu/PTFE electrode-dielectric units, so the exposed contact interface is PTFE/PTFE. To overcome the intrinsic output bottleneck caused by the nearly zero triboelectric-polarity contrast of identical-material interfaces, we introduce a voltage multiplier circuit (VMC)-assisted self-excitation strategy to promote charge injection. Under the same PTFE film thickness and contact separation conditions, the AS-TENG achieves a peak current of 71 μA, which is approximately 61% higher than that of a conventional PTFE/Al TENG. This all-symmetric strategy is further shown to be applicable to other polymer systems. By replacing the exposed heterogeneous contact interface with a chemically identical PTFE/PTFE interface, the device exhibits improved corrosive environment tolerance while maintaining a stable mechanical output; the PTFE-based AS-TENG retains approximately 70% of its output after a 40 h immersion in strong acidic and alkaline solutions. A self-powered floor based on the AS-TENG principle transfers 15 μC per cycle. This work provides a practical route for enhancing identical tribolayer TENGs through VMC-assisted self-excitation and expands the structural design space of TENGs for energy harvesting under corrosive operating conditions.
