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February 26, 2026ACS Applied Polymer Materials2 citations

Synergistic Charge Manipulation in Aramid Nanofiber/Hydroxyapatite Composites for Environmentally Robust Triboelectric Nanogenerator

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RPRuixue PangZLZhaoqing LüFJFengfeng Jia

Key Points

  • The study aims to enhance the environmental stability and performance of triboelectric nanogenerators through composite materials.
  • Developed a composite film using aramid nanofibers and hydroxyapatite via vacuum-assisted filtration.
  • Characterized the mechanical properties and triboelectric output of the composite film.
  • Integrated the optimized composite into a triboelectric nanogenerator device and tested its performance under various conditions.
  • The composite film exhibited a tensile strength of 168.2 MPa and toughness of 9.52 MJ·m–3.
  • The TENG device demonstrated a power output of 26.45 V·cm–2 and a rapid response time of 16 ms.
  • The device maintained stable operation across 6000 cycles and at extreme temperatures (up to 350 °C) and acidic/alkaline conditions.

Abstract

Triboelectric nanogenerators (TENGs) are promising candidates for powering next-generation wearable electronics by leveraging their self-powered capability, efficient low-frequency energy harvesting, and fast response. However, the widespread application of polymer-based TENGs remains limited by their poor environmental stability under harsh conditions. To overcome this limitation, we developed a durable aramid nanofiber/hydroxyapatite (ANF/HAP) composite film (denoted as AH film) through vacuum-assisted filtration. The design leverages a synergistic charge manipulation mechanism: ANFs serve as electron-trapping sites with low electrical potential, while HAP acts as a high-dielectric charge reservoir. This unique charge manipulation synergy concurrently enhances the mechanical robustness and triboelectric output. The optimized AH film demonstrates a remarkable tensile strength of 168.2 MPa and a toughness of 9.52 MJ·m–3. When integrated into a TENG device (AH-T), the device achieves a superior power output of 26.45 V·cm–2, a rapid response time of 16 ms, and excellent cyclic stability over 6000 cycles. Critically, the AH-T demonstrates exceptional environmental resilience, maintaining stable operation at high temperatures (up to 350 °C) and in acidic/alkaline environments. This work provides a practical and effective strategy for designing environmentally robust triboelectric materials, advancing the development of durable energy harvesters for wearable and harsh environment applications.

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Cite This Study

Pang et al. (2026) studied this question.

synapsesocial.com/papers/699fe2fe95ddcd3a253e6826https://doi.org/10.1021/acsapm.5c04016
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