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April 3, 2026Nano Letters0 citations

Ultrastable, Omnidirectionally Stretchable, and Transparent Electrodes Based on Ag@Au Core–Sheath Nanowires with Noncoplanar Patterns for Wearable Electronics

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LYLiancong YueJWJiajia WangYLYouyou Liu

Key Points

  • The aim is to develop robust, stretchable, and transparent electrodes for use in on-skin electrophysiological devices.
  • Fabrication of electrodes using Ag@Au core-sheath nanowires with patterned 2D geometries on prestrained substrates.
  • Utilization of hydrophobic masks and strain release to create 3D wrinkled architectures.
  • Implementation of salt-assisted nanowire cold-welding for enhanced conductivity.
  • Assessment of electrode performance under various strain conditions and environmental challenges.
  • Achieved a conductivity of 9.24 Ω/sq with 75.0% transmittance.
  • Withstood over 10,000 cycles at 30% uniaxial strain with minimal resistance increase.
  • Maintained resistance below 1.5× initial values under 100% equibiaxial strain.
  • Outperformed commercial Ag/AgCl gel electrodes in EMG/ECG signal fidelity and motion-artifact suppression.

Abstract

On-skin electrophysiological devices require stretchable transparent electrodes offering omnidirectional compliance, stable conductivity, environmental resilience, and high transparency. Herein, we present hierarchical, environmentally robust omnidirectionally stretchable transparent electrodes (OSTEs) using Ag@Au core-sheath nanowires (Ag@Au NWs). Fabrication employs reusable hydrophobic masks to pattern 2D geometries on prestrained substrates; strain release self-assembles 3D wrinkled architectures. Combined with salt-assisted NW cold-welding, this enables exceptional multidirectional stretchability and strain-tolerant conductivity. The optimized OSTE achieves 9.24 Ω/sq at 75.0% transmittance, withstands >10,000 cycles of 30% uniaxial strain (resistance increase 2O2). Ag@Au NW OSTEs deliver high-fidelity EMG/ECG signals with significant motion-artifact suppression during skin deformation and perspiration, outperforming commercial Ag/AgCl gel electrodes. This scalable materials-structure integration approach accelerates precise wearable biosensors for dynamic health monitoring.

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Cite This Study

Yue et al. (2026) studied this question.

synapsesocial.com/papers/69cf5ecb5a333a821460d61ehttps://doi.org/10.1021/acs.nanolett.6c00344
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