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February 13, 2026Nano Letters3 citations

Highly Flexible Fiber Supercapacitors with Ultra-High Energy Density for Energy Storage Electronic Textiles

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DLDonghui LiJGJianfeng GuSLSiyu Li

Key Points

  • This research aims to develop fiber-shaped supercapacitors with high energy density and mechanical flexibility for wearable applications.
  • Developed a scalable strategy for fiber supercapacitors (FSCs) using hybrid fibers.
  • Integrated MXene nanosheets, polyrotaxane, and PEDOT:PSS in the fabrication process.
  • Functionalized fibers with in situ silver nanowires and utilized helical twisted Cu fiber current collectors.
  • Achieved a volumetric capacitance of 860.1 F cm^-3 at 5 mV s^-1.
  • Demonstrated 96.6% capacitance retention after 10,000 bending cycles.
  • Obtained an energy density of 76.6 mWh cm^-3 and power density of 776.5 mW cm^-3, surpassing many existing flexible FSCs.

Abstract

Fiber-shaped supercapacitors (FSCs) have emerged as promising energy storage solutions for powering miniaturized wearable electronic textiles. However, the scalable fabrication of flexible fiber electrodes with a high energy density and excellent storage remains challenging. Herein, we report a scalable strategy for developing FSCs with a high energy density and mechanical flexibility. This approach integrates wet-spun MXene nanosheets/slide-ring polyrotaxane/PEDOT:PSS hybrid fibers with in situ silver nanowire (AgNW) functionalization and helical twisted Cu fiber current collectors. The resulting fibers exhibit high electrical conductivity, large specific surface area, and outstanding strength and toughness. After twisting and assembly with Cu fiber, the FSCs show a high volumetric capacitance of 860.1 F cm-3 at 5 mV s-1, with 96.6% retention after 10,000 bending cycles. The FSCs also achieve an energy density of 76.6 mWh cm-3 and power density of 776.5 mW cm-3, surpassing those of most reported flexible FSCs. These properties enable broad wearable device applications.

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/698ebf1d85a1ff6a9301648bhttps://doi.org/10.1021/acs.nanolett.5c05637
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