Bilayer nested porous microcapsules inspired by honeycomb structures achieving efficient self-healing and intrinsic property enhancement of insulating materials

IF 6.5 2区 材料科学 Q1 CHEMISTRY, APPLIED
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Abstract

Self-healing microcapsules represent a highly promising strategy for enhancing the long-term durability of materials under prolonged service conditions. Nevertheless, the industrial application of microcapsules encounters significant challenges. This is primarily due to the dilemmas involved in guaranteeing effective repair without significantly undermining the intrinsic properties of the substrate materials. Inspired by the structure of honeycombs, this paper introduces a bilayer, nested, porous self-healing microcapsule featuring an ultra-thin, rigid shell that effectively addresses the above challenges. An ultra-thin rigid shell is first constructed to enhance mechanical strength while significantly increasing the load capacity of the healing agent. Subsequently, the subcritical water treatment method is employed to etch nanoscale through-holes on the shell surface for encapsulating the healing agent. Finally, via a cross-linking reaction, a film is formed on the surface of the porous shell to seal the holes. The test results show that the loading efficiency of the microcapsules achieves 94.4 %. Moreover, while the repair efficiency is substantially enhanced, the intrinsic properties of the matrix material are maintained, and there is additionally a measurable improvement in tensile strength and insulation performance. To our knowledge, the microcapsules that significantly enhance repair efficiency while concurrently improving the properties of the matrix have not yet been reported in previous studies.

Abstract Image

受蜂巢结构启发的双层嵌套多孔微胶囊实现了绝缘材料的高效自修复和内在性能提升
自愈合微胶囊是在长期使用条件下提高材料长期耐久性的一种非常有前途的策略。然而,微胶囊的工业应用遇到了巨大挑战。这主要是由于在保证有效修复的同时又不严重破坏基底材料固有特性的难题。受蜂巢结构的启发,本文介绍了一种具有超薄刚性外壳的双层嵌套多孔自修复微胶囊,可有效解决上述难题。首先构建了一个超薄刚性外壳,以增强机械强度,同时显著提高愈合剂的负载能力。然后,采用亚临界水处理方法在外壳表面蚀刻纳米级通孔,以封装愈合剂。最后,通过交联反应,在多孔壳表面形成一层薄膜,封住孔洞。测试结果表明,微胶囊的装载效率达到 94.4%。此外,在大幅提高修复效率的同时,基体材料的固有特性得以保持,而且拉伸强度和绝缘性能也有了明显改善。据我们所知,微胶囊在显著提高修复效率的同时还能改善基体的性能,这在以往的研究中还没有报道过。
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来源期刊
Progress in Organic Coatings
Progress in Organic Coatings 工程技术-材料科学:膜
CiteScore
11.40
自引率
15.20%
发文量
577
审稿时长
48 days
期刊介绍: The aim of this international journal is to analyse and publicise the progress and current state of knowledge in the field of organic coatings and related materials. The Editors and the Editorial Board members will solicit both review and research papers from academic and industrial scientists who are actively engaged in research and development or, in the case of review papers, have extensive experience in the subject to be reviewed. Unsolicited manuscripts will be accepted if they meet the journal''s requirements. The journal publishes papers dealing with such subjects as: • Chemical, physical and technological properties of organic coatings and related materials • Problems and methods of preparation, manufacture and application of these materials • Performance, testing and analysis.
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