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具有强可回收粘附力的机械坚固、热稳定且自愈合的聚亚胺网络的软硬结构构建。

Soft-Rigid Construction of Mechanically Robust, Thermally Stable, and Self-Healing Polyimine Networks with Strongly Recyclable Adhesion.

作者信息

Jia Zichen, Wang Haiyue, Yu Ping, He Hongfei, Huang Qirui, Hong Wei, Liu Cai, Shi Yanji, Wang Jue, Xin Yumeng, Jia Xuemeng, Ma Juanjuan, Yu Bin

机构信息

School of Environmental and Chemical Engineering, Jiangsu Ocean University, Lianyungang, Jiangsu, 222005, China.

State Key Laboratory of Fire Science, University of Science and Technology of China, Hefei, Anhui, 230026, China.

出版信息

Small. 2024 Dec;20(51):e2406821. doi: 10.1002/smll.202406821. Epub 2024 Oct 11.

DOI:10.1002/smll.202406821
PMID:39392200
Abstract

Reversible and recyclable thermosets have garnered increasing attention for their smart functionality and sustainability. However, they still face challenges in balancing comprehensive performance and dynamic features. Herein, silicon (Si)─oxygen (O) and imidazole units covalent bonds are coupled to generate a new class of bio-polyimines (Bio-Si-PABZs), to endow them with high performance and excellent reprocessing capability and acid-degradability. By tailoring the molar content of diamines, this Bio-Si-PABZs displayed both a markedly high glass transition temperature (162 °C) and a high char yield at 800 °C in an oxygen atmosphere (73.1%). These Bio-Si-PABZs with their favorable properties outperformed various previously reported polyimines and competed effectively with commercial fossil-based polycarbonate. Moreover, the scratch (≈10 µm) on the surface of samples can be self-healing within only 2 min, and an effective "Bird Nest"-to-"Torch" recycling can also be achieved through free amines solution. Most importantly, a bio-based siloxane adhesive derived from the intermediate Bio-Si-PABZ-1 by acidic degradation demonstrated broad and robust adhesion in various substrates, with values reaching up to ≈3.5 MPa. For the first time, this study lays the scientific groundwork for designing robust and recyclable polyimine thermosets with Si─O and imidazole units, as well as converting plastic wastes into thermal-reversibility and renewable adhesives.

摘要

可逆且可回收的热固性材料因其智能功能和可持续性而受到越来越多的关注。然而,它们在平衡综合性能和动态特性方面仍面临挑战。在此,硅(Si)-氧(O)和咪唑单元的共价键相互耦合,生成了一类新型的生物聚酰亚胺(Bio-Si-PABZs),赋予它们高性能、优异的再加工能力和酸降解性。通过调整二胺的摩尔含量,这种Bio-Si-PABZs在氧气气氛中显示出显著高的玻璃化转变温度(162℃)以及在800℃时的高残炭率(73.1%)。这些具有良好性能的Bio-Si-PABZs优于各种先前报道的聚酰亚胺,并能有效地与商业化石基聚碳酸酯竞争。此外,样品表面约10μm的划痕仅需2分钟即可自愈,并且通过游离胺溶液还能实现从“鸟巢”到“火炬”的有效回收利用。最重要的是,由中间体Bio-Si-PABZ-1经酸性降解得到的生物基硅氧烷粘合剂在各种基材上表现出广泛而强大的粘附力,其值高达约3.5MPa。本研究首次为设计具有Si-O和咪唑单元的坚固且可回收的聚酰亚胺热固性材料,以及将塑料废物转化为热可逆和可再生粘合剂奠定了科学基础。

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