4.8 Article

Antiliquid-Interfering, Antibacteria, and Adhesive Wearable Strain Sensor Based on Superhydrophobic and Conductive Composite Hydrogel

Journal

ACS APPLIED MATERIALS & INTERFACES
Volume 13, Issue 38, Pages 46022-46032

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c15052

Keywords

flexible wearable sensor; conductive composite hydrogel; superhydrophobic; antibacterial; self-adhesive

Funding

  1. Science Foundation of China [52003220]
  2. Fundamental Rese arch Funds for the Cent ral Uni v e r s i t i es [G2019KY05109, G2020KY05303]
  3. China Postdoctoral Science Foundation [2020M673480]
  4. Natural Science Basic Research Plan in Shaanxi Province of China [2020JQ-140]

Ask authors/readers for more resources

The study demonstrates a flexible wearable sensor with a double-layer structure, consisting of an outer layer of silicone elastomer/silica microparticle composite film and an inner layer of P(AAm-co-HEMA)-MXene-AgNPs hydrogel. The sensor offers superhydrophobic function and excellent antibacterial activity, with strong adhesion to various materials.
Conductive hydrogels are promising multifunctional materials for wearable sensors, but their practical applications require combined properties that are difficult to achieve. Herein, we developed a flexible wearable sensor with double-layer structure based on conductive composite hydrogel, which included the outer layer of silicone elastomer (Ecoflex)/silica microparticle composite film and the inner layer of P(AAm-co-HEMA)-MXene-AgNPs hydrogel. Through covalently crosslinking silicone elastomer on the surface of the hydrogel polymer, we bonded a thin Ecoflex film (100 mu m) on the P(AAm-co-HEMA)-MXene-AgNPs hydrogel with robust interface, which can easily adhere to the Ecoflex/SiO2 microparticle composite film by silicone glue. The Ecoflex/SiO2 microparticle composite film endows the strain wearable sensor with superhydrophobic function that could maintain the stability under stretching or bending. Moreover, it can effectively resist the interference of water droplets and water flow. The P(AAm-co-HEMA)-MXene-AgNPs hydrogel exhibits outstanding antibacterial activity to inhibit Staphylococcus aureus, Escherichia coli, and even drug-resistant Escherichia coli. In addition, the flexible wearable sensor exhibited good self-adhesive performance by changing the reaction temperature of hydrogel and can adhere strongly onto various materials. The conductive composite hydrogel reported in this work contributes an innovative strategy for the preparation of multifunctional flexible wearable sensor.

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