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Updated: Jun 20, 2026

A Fabrication Method for Highly Stretchable Conductors with Silver Nanowires
Published on: January 21, 2016
Capillary-Welded Silver Nanowire Networks Enabling Decoupled Multimodal Wearable Sensing and Transparent
Lin Lin Feng1, Jin Kyoung Park1, Jin Hyuck Heo2
1BK21 Four R&E Center, Department of Chemical and Biological Engineering, Korea University, Seoul 02841, Republic of Korea.
Abstract:
Transparent wearable electronics integrating strain sensing, temperature detection, and electrothermal heating remain challenging due to weak adhesion between nanowires and substrates, as well as coupled signal responses. Here, we report a transparent PET/Ag NW/PVA film fabricated via rapid vapor-induced capillary welding and polymer encapsulation strategy. Brief vapor-exposure generates uniform droplets on silver nanowire, while evaporation-induced capillary force reinforces nanowire junctions at room-temperature without substrate damage. The PVA encapsulation layer further enhances interfacial adhesion and stabilizes the percolative network. The resulting electrode exhibited high transparency (∼85% at 550 nm) and low sheet resistance (22-35 Ω sq-1). The stabilized network enabled reliable strain sensing over 1600 bending cycles, thermoresistive detection from 0-50 °C (R2 = 0.986), and uniform electrothermal output up to ∼52 °C at 5 V. The distinct temporal responses enabled effective signal decoupling, allowing robust multimodal sensing within a single transparent architecture.

