弹性体
聚合物
胶粘剂
共价键
聚丙烯
聚二甲基硅氧烷
单体
材料科学
耐化学性
聚合
热固性聚合物
化学工程
高分子化学
化学
超临界流体
化学改性
纳米技术
环境污染
高分子科学
化学工业
有机化学
氯仿
溶剂分解
复合材料
表面改性
作者
Qionglu Xiao,Hui Li,Chun Liu,Xiaoyue Zeng,Shiguang Zhang,Mei Hu,Jianbing Zeng,Liang Chen
出处
期刊:Macromolecules
[American Chemical Society]
日期:2026-02-26
卷期号:59 (5): 3031-3040
被引量:1
标识
DOI:10.1021/acs.macromol.5c02725
摘要
The global plastics crisis has triggered severe environmental pollution and resource depletion. While covalent adaptable networks (CANs) offer promising solutions, achieving ambient-temperature chemical recycling with quantitative monomer recovery and zero chemical consumption remains challenging. Furthermore, catalyst-free reprocessing via multiple industrial techniques under mild conditions, alongside energy-efficient and eco-benign synthesis, constitutes a critical bottleneck. Herein, we introduce thiohemiketal as a novel dynamic covalent motif for self-healing recyclable polymers. Mechanistic studies using small-molecule models reveal catalyst-free bond formation under ambient conditions, rapid dynamic exchange without catalysts, and quantitative solvolysis in chloroform at 25 °C. Leveraging this unique chemistry, we developed a solvent- and catalyst-free polymerization strategy to synthesize CANs exhibiting exceptional thermal stability, broadly tunable mechanical properties (Young’s modulus: 2.4 MPa to 1.1 GPa, spanning polydimethylsiloxane (PDMS)-like elastomers to polypropylene (PP)-like plastics), and ultrastrong adhesion (12.5 MPa lap shear strength on iron). Crucially, these networks exhibited exceptional sustainability: ambient-temperature closed-loop chemical recycling via solvolysis with quantitative recovery and no chemical consumption, catalyst-free multimodal reprocessability (compression, injection, and extrusion), and rapid self-healing. This work establishes a new paradigm for sustainable polymer design, showcasing significant potential for advanced adhesives and structural composites.
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