4.8 Article

A Highly Stretchable, Self-Healing Elastomer with Rate Sensing Capability Based on a Dynamic Dual Network

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 13, 期 7, 页码 9043-9052

出版社

AMER CHEMICAL SOC
DOI: 10.1021/acsami.1c00282

关键词

polyborosiloxane; rate sensing; dynamic dual network; self-healing; highly stretchable

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A highly stretchable, recyclable, self-healing polysiloxane elastomer with rate sensing capability has been designed and synthesized, overcoming the structural instability of conventional solid-liquid materials. The elastomer exhibits certain adhesion, satisfactory mechanical robustness, and superior elongation at break. After heating treatment, the mechanical properties of damaged materials can be almost completely restored. The elastomer can sense different rates by resistance change, principally in the range of 10 mm/min-150 mm/min, and can be personalized by 3D printing at room temperature.
Flexible sensing materials have attracted tremendous attention in recent years because of their potential applications in the fields of health monitoring, artificial intelligence, and so on. However, the preparation of rate sensing materials with self-healing performance is always a huge challenge. Herein, we first report the design and synthesis of a highly stretchable, recyclable, self-healing polysiloxane elastomer with rate sensing capability. The elastomer is composed of a dynamic dual network with boron/oxygen dative bonds and hydrogen bonds, which overcomes the structural instability of conventional solid-liquid materials. It exhibits certain adhesion, satisfactory mechanical robustness, and superior elongation at break (up to 1171%). After heating treatment at 80 degrees C for 2-4 h, the mechanical properties of damaged materials can be almost completely restored. Because of the solid-liquid property of the elastomer, it has irreplaceable functions which can sense different rates by resistance change after blending with multiwalled carbon nanotubes, principally in the range of 10 mm/min-150 mm/min. Especially, this rate sensing elastomer can be personalized by 3D printing at room temperature. This rate sensing strategy coupled with the introduction of dynamic dual-network structure is expected to help design advanced wearable devices for human rhythmic movement.

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