Zhang Shipeng, Guo Fengmei, Gao Xue, Yang Mengdan, Huang Xinguang, Zhang Ding, Li Xinjian, Zhang Yingjiu, Shang Yuanyuan, Cao Anyuan
School of Physics and Laboratory of Zhongyuan Light, Zhengzhou University, Zhengzhou, 450052, China.
Luoyang Institute of Science and Technology, School of Intelligent Manufacturing, Luoyang, 471023, China.
Adv Sci (Weinh). 2024 Oct;11(39):e2405880. doi: 10.1002/advs.202405880. Epub 2024 Aug 20.
Hydrogel sensors are widely utilized in soft robotics and tissue engineering due to their excellent mechanical properties and biocompatibility. However, in high-water environments, traditional hydrogels can experience significant swelling, leading to decreased mechanical and electrical performance, potentially losing shape, and sensing capabilities. This study addresses these challenges by leveraging the Hofmeister effect, coupled with directional freezing and salting-out techniques, to develop a layered, high-strength, tough, and antiswelling PVA/MXene hydrogel. In particular, the salting-out process enhances the self-entanglement of PVA, resulting in an S-PM hydrogel with a tensile strength of up to 2.87 MPa. Furthermore, the S-PM hydrogel retains its structure and strength after 7 d of swelling, with only a 6% change in resistance. Importantly, its sensing performance is improved postswelling, a capability rarely achievable in traditional hydrogels. Moreover, the S-PM hydrogel demonstrates faster response times and more stable resistance change rates in underwater tests, making it crucial for long-term continuous monitoring in challenging aquatic environments, ensuring sustained operation and monitoring.
水凝胶传感器因其优异的机械性能和生物相容性而被广泛应用于软体机器人和组织工程领域。然而,在高水环境中,传统水凝胶会出现显著的溶胀现象,导致机械和电学性能下降,可能会失去形状和传感能力。本研究通过利用霍夫迈斯特效应,并结合定向冷冻和盐析技术,来开发一种分层的、高强度、坚韧且抗溶胀的PVA/MXene水凝胶,以应对这些挑战。特别是,盐析过程增强了PVA的自缠结,从而得到了拉伸强度高达2.87MPa的S-PM水凝胶。此外,S-PM水凝胶在溶胀7天后仍能保持其结构和强度,电阻仅变化6%。重要的是,其传感性能在溶胀后得到了改善,这是传统水凝胶很少能实现的能力。此外,S-PM水凝胶在水下测试中表现出更快的响应时间和更稳定的电阻变化率,这对于在具有挑战性的水生环境中进行长期连续监测至关重要,可确保持续运行和监测。