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March 14, 2026Nature Communications11 citationsOpen Access

Scalable and stretchable 1D multifunctional fibers for multimodal sensing and stimulation

JYJunyi YinJZJie ZhuSWShaolei Wang

Key Points

  • The research aims to develop a scalable method for creating multifunctional fibers that integrate sensing and stimulation capabilities.
  • Developed a solution-deposition strategy for fiber fabrication
  • Integrated electrochemically stable electrodes within the fiber structure
  • Tested electrical performance under mechanical strain
  • Evaluated biocompatibility for long-term applications
  • Demonstrated improved electrical performance under strain with maintained conductivity
  • Achieved lower impedance and higher signal stability during physiological monitoring
  • Showed excellent biocompatibility suitable for wearable systems

Abstract

One-dimensional (1D) multifunctional fibers have garnered significant attention due to their advantageous geometry properties, which allows conformal interfacing with soft biological tissues and efficient charge transport. Here, we developed a solution-deposition strategy for the scalable and cost-effective fabrication of stretchable liquid metal fibers integrated with electrochemically stable, tissue-interfacing electrodes, thereby enabling the realization of stretchable multifunctional fibers. This fiber seamlessly combines electrodes and conductive pathways into a single structure, enabling versatile applications such as electrophysiological signal sensing, in vivo nerve stimulation, and wireless energy transmission. The multifunctional fiber demonstrates significantly improved electrical performance under strain, maintaining conductivity during stretching and bending, and exhibits lower impedance and higher signal stability, particularly during physiological monitoring and electrical stimulation. The fiber's excellent biocompatibility and mechanical compliance makes it well suited for wearable systems and long-term biomedical applications, offering a robust platform for next generation 1D bioelectronics.

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Cite This Study

Yin et al. (2026) studied this question.

synapsesocial.com/papers/69b4fbb1b39f7826a300c0c1https://doi.org/10.1038/s41467-026-70178-9
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