微晶纤维素
硫辛酸
材料科学
纳米技术
微晶
共价键
智能材料
聚合物
纤维素
机械化学
勃姆石
纳米颗粒
热稳定性
极限抗拉强度
弯曲
聚合
二硫键
计算机科学
微尺度化学
耐久性
作者
Weibing Xue,Wei Wu,Huijun Zhang,Jiayi Liu,Tongda Liu,Yanqun Huang,Xin Ran,Jun Li,Guanben Du,Long Yang
标识
DOI:10.1021/acssuschemeng.5c11585
摘要
Ionogels represent a promising class of materials for applications in flexible electronics, such as wearable sensors and human motion monitoring. Here, a multifunctional ionogel is developed through the synthesis of a microcrystalline cellulose (MCC)-reinforced poly(thioctic acid) gel (MRG), which integrates high toughness, autonomous self-healing, and strain-sensing functionality. The material is constructed via the thermal ring-opening polymerization of thioctic acid, dynamically cross-linked by Zn2+ coordination and reinforced with MCC. Structural characterization confirms the successful formation of a hierarchical dynamic network comprising disulfide bonds, metal coordination, and hydrogen bonding. The resulting ionogel exhibits outstanding mechanical properties, with fracture strain exceeding 14,500% and a tensile strength of 0.68 MPa, alongside excellent fatigue resistance over 300 cycles. It also demonstrates efficient self-healing, achieving 70.6% mechanical recovery within 5 h and full crack closure in 60 min at room temperature. The gel functions as a highly sensitive strain sensor capable of monitoring human joint movements with an angle-dependent electrical response. Additionally, the material enables closed-loop recycling via an eco-friendly hot-pressing method, effectively minimizing environmental impact while embodying green design concepts. These integrated properties stem from the synergistic dissociation and reorganization of dynamic covalent and noncovalent bonds within the MCC-enhanced network. This work successfully developed a tough, self-healing, recyclable, strain-sensing ionogel composed of bioderived thioctic acid and microcrystalline cellulose.
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