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March 15, 2026Nano Trends2 citationsOpen Access

Enhanced Triboelectric Effect Using Functionalized Multiwalled Carbon Nanotube-Coated Fiber Mats for Biomechanical Energy Harvesting

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FVFernando ViescaDLDiego de LeonKAKevin Alejandro

Key Points

  • The research aims to enhance the triboelectric effect for biomechanical energy harvesting using functionalized carbon nanotubes on fiber mats.
  • Fabrication of TENGs using forcespun polytetrafluoroethylene and electrospun polyvinyl alcohol fiber mats.
  • Coating FS-PTFE mats with functionalized multiwalled carbon nanotubes dispersed in surfactant solutions.
  • Characterization of materials using FESEM, AFM, energy dispersive XRD, and FTIR analyses.
  • Electrical performance testing of the fabricated TENGs under various conditions.
  • Achieved a 240% improvement in voltage performance for MWCNT-coated fibers compared to uncoated fibers.
  • Highest peak performance recorded was 284 V, 2.29 µA, and 0.65 mW at 140 BPM without surfactant.
  • Demonstrated charging capacity, durability, stability, and applicability as sensors in biomechanical motion scenarios.

Abstract

Triboelectric nanogenerators (TENGs) have emerged as a cutting-edge technology for developing self-powered wearable electronic devices. In this study, TENGs were fabricated using two fiber mats: forcespun polytetrafluoroethylene (FS-PTFE) microfibers and electrospun polyvinyl alcohol (ES-PVA) nanofiber (NF) mats. The FS-PTFE mats were coated with functionalized multiwalled carbon nanotubes (MWCNTs). Functionalized MWCNTs were dispersed in water-based solutions containing three different surfactants—sodium dodecyl sulfate, sodium dodecylbenzene sulfonate, and Triton X-100 to enhance fiber interaction. The NF mats were subsequently immersed in aqueous systems. The surfactant facilitated the uniform deposition of COOH-MWCNTs onto the FS-PTFE fibers, serving as a negative layer, while ES-PVA mat functioned as a positive layer for TENGs. The fabricated fiber systems were characterized using FESEM and AFM with energy dispersive XRD and FTIR. Electrical testing revealed 240% improvement in voltage performance for MWCNT-coated fibers compared to uncoated fibers. The specimen without surfactant exhibited the highest peak-to-peak values of 284 V, 2.29 µA, and 0.65 mW at a frequency of 140 BPM. Further testing demonstrated the TENG's charging capacity, durability, stability, and applicability as a sensor in various biomechanical motion scenarios. These findings underscore the potential of the developed TENGs for cost-effective, long-term use in self-powered wearable energy harvesting and sensory applications.

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Cite This Study

Viesca et al. (2026) studied this question.

synapsesocial.com/papers/69b64c67b42794e3e660dc35https://doi.org/10.1016/j.nwnano.2026.100200
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