Rigid-Flexible Synergy in Hydroxyethyl Cellulose-Polyurethane Composites Featuring Dynamic Disulfide Bonds for Highly Efficient Self-Healing

纤维素 羟乙基纤维素 材料科学 聚氨酯 二硫键 热稳定性 聚合物 智能材料 共价键 复合数 化学工程 复合材料 基质(化学分析) 石墨烯 环境污染 动态力学分析 工作(物理) 纳米复合材料 化学改性 化学稳定性 降级(电信) 编队网络 热压 先进复合材料 智能聚合物 热的 结构稳定性 生物降解 序列(生物学)
作者
Jialu Zhang,Nan Nan Xia,Fei He,Qin Wu
出处
期刊:ACS Sustainable Chemistry & Engineering [American Chemical Society]
卷期号:14 (5): 2721-2732 被引量:1
标识
DOI:10.1021/acssuschemeng.5c13676
摘要

Cellulose is a green and renewable biobased material with immense potential, yet its application in self-healing materials is hindered by its inherent rigidity, which severely limits the molecular chain movement. To break through this limitation, we introduce an innovative design strategy: “Introduces a rigid-flexible synergy strategy by utilizing the flexible polymer network to drive the rigid cellulose network”. In this strategy, a hydroxyethyl cellulose-based composite material with a synergy network structure was successfully constructed by covalently bonding a rigid hydroxyethyl cellulose (HEC) backbone into a flexible polyurethane (PU) matrix containing dynamic disulfide bonds. The inherent thermodynamic incompatibility between HEC and the PU matrix leads to the formation of HEC-rich rigid domains that act as multifunctional cross-linking points, enhancing the mechanical integrity of the material. Upon damage, the high mobility of the flexible PU segments, coupled with the dynamic exchange of disulfide bonds, allows the entire network to rearrange and flow at the crack interface, leading to highly efficient healing. The anchored HEC domains provide structural stability during this process. The results show that the composite material not only maintains excellent mechanical properties but also achieves a self-healing efficiency of up to 96.6%, which is 3.7 times higher than that of the control group without disulfide bonds. Furthermore, this composite possesses outstanding thermal reprocessability. This research carves out a new path for high-performance hydroxyethyl cellulose-based smart materials and offers a promising material-based solution to tackle plastic pollution and advance sustainable development goals.
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