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May 17, 2026Journal of Applied Polymer Science0 citations

Core Fiber Stiffness and Solvent Influence on Polypyrrole Fiber Actuators

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RKRudolf KieferNNNgọc Tuấn NguyễnTOToribio F. Otero

Key Points

  • To investigate how core fiber stiffness and solvent choice affect the performance of polypyrrole fiber actuators.
  • Analyzed a carbon fiber and elastic Lycra fiber for actuator applications.
  • Applied electro-chemo-mechanical deformation using cyclic voltammetry and chronoamperometry.
  • Evaluated performance in propylene carbonate and aqueous sodium perchlorate solutions.
  • CF-PPy/DBS actuator exhibited low strain (4 kPa) and stress, limiting practical use.
  • cLy-PPy/DBS actuator achieved 1.1% strain at a frequency of 2.5 mHz in propylene carbonate (120 kPa stress).
  • In aqueous solution, cLy-PPy/DBS actuator had 0.8% strain at the same frequency (86 kPa stress) with stable electroactivity across cycles.

Abstract

ABSTRACT Fiber‐ or yarn‐based textile actuators are being developed for practical applications in healthcare technologies. Here we analyze two different core fibers: a very stiff and available carbon fiber (CF) and a most elastic Lycra fiber. The Lycra fiber was made conductive (cLy) by chemical deposition of oxidized polypyrrole (PPy). Then, both fibers were coated with PPy doped with dodecyl benzenesulfonate (DBS) by electropolymerization, forming CF‐PPy/DBS and cLy‐PPy/DBS linear actuators. Those linear actuators underwent isotonic and isometric electro‐chemo‐mechanical deformation (ECMD) when submitted to consecutive potential cycles (cyclic voltammetry) or square potential waves (chronoamperometry) in propylene carbonate (PC) or aqueous solutions of sodium perchlorate (NaClO 4 ). The high stiffness of the CF‐PPy/DBS actuator results in very low strain and stress (4 kPa), few practical for applications. The cLy‐PPy/DBS actuator gives 1.1% strain (at 2.5 mHz) and 120 kPa stress, resulting in an anion‐driven actuation in PC. In the aqueous solution, it works as a cation‐driven actuator with a strain of 0.8% and a stress of 86 kPa at the same frequency. Long‐term stability studied during 160 cycles reveals the increase of the electroactivity during the 40 initial cycles and good stability beyond this point.

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Cite This Study

Kiefer et al. (2026) studied this question.

synapsesocial.com/papers/6a095c5d7880e6d24efe268ahttps://doi.org/10.1002/app.70863
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