Affiliation:
1. Intelligent Wearable Engineering Research Center of Qingdao, College of Textiles and Clothing, Qingdao University, Qingdao 266071, China
2. Shandong Special Nonwoven Materials Engineering Research Center, Qingdao University, Qingdao 266071, China
Abstract
Owing to their excellent elasticities and adaptability as sensing materials, ionic hydrogels exhibit significant promise in the field of intelligent wearable devices. Nonetheless, molecular chains within the polymer network of hydrogels are susceptible to damage, leading to crack extension. Hence, we drew inspiration from the composite structure of the human dermis to engineer a composite hydrogel, incorporating dopamine-modified elastic fibers as a reinforcement. This approach mitigates crack expansion and augments sensor sensitivity by fostering intermolecular forces between the dopamine on the fibers, the hydrogel backbone, and water molecules. The design of this composite hydrogel elevates its breaking tensile capacity from 35 KJ to 203 KJ, significantly enhancing the fatigue resistance of the hydrogel. Remarkably, its electrical properties endure stability even after 2000 cycles of testing, and it manifests heightened sensitivity compared to conventional hydrogel configurations. This investigation unveils a novel method for crafting composite-structured hydrogels.
Funder
National Natural Science Foundation of China
Shandong Provincial Universities Youth Innovation Technology Plan Team
Innovation Ability Enhancement Project of Small and Medium sized Enterprise of Shandong Province
Natural Science Foundation of Shandong Province of China
National Key Research and Development Program
Taishan Scholar Program of Shandong Province in China
Natural Science Foundation of Qingdao
Suqian Key Research and Development Plan
Qingdao Key Technology Research and Industrialization Demonstration Projects
Qingdao Shinan District Science and Technology Plan Project
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