4.8 Article

Highly Air/Water-Permeable Hierarchical Mesh Architectures for Stretchable Underwater Electronic Skin Patches

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 12, Issue 12, Pages 14425-14432

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.9b23400

Keywords

strain sensor; stretchable electrode; conductive polymer; biomimetics; dry adhesive

Funding

  1. National Research Foundation of Korea [NRF-2019R1C1C1008730]
  2. Korea Institute of Industrial Technology as Development of smart textronic products based on electronic fibers and textiles [kitech JA-19-0001]
  3. Gyeongi-Do Technology Development Program as Development of smart textronic products based on electronic fibers and textiles [kitech IZ-19-0003]

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The development of an electronic skin patch that can be used in underwater environments can be considered essential for fabricating long-term wearable devices and biomedical applications. Herein, we report a stretchable conductive polymer composite (CPC) patch on which an octopus sucker-inspired structure is formed to conformally contact with biological skin that may be rough and wet. The patch is patterned with a hexagonal mesh structure for water and air permeability. The patch films are suited for a strain sensor or a stretchable electrode as their piezoresistive responses can be controlled by changing the concentration of conductive fillers to polymeric polyurethane. The CPC patch with a hexagonal mesh pattern (HMP) can be easily stretched for a strain sensor and is insensitive to tensile strain, making the patch suitable as a stretchable electrode. Furthermore, the octopus-like structures formed on the skeleton of the HMP allow the patch to maintain strong adhesion underwater by easily draining excess water trapped between the patch and skin. The sensor patch (<50 wt % carbon nanotubes (CNTs)) can sensitively detect the bending strain of a finger, and the electrode patch (SO wt % CNTs with addition of Ag flakes) can stably measure biosignals (e.g., electrocardiogram signals) under both dry and wet conditions owing to the octopus-like structure and HMP.

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