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具有阻燃和高效调温性能的层状双氢氧化物修饰的二氧化硅集成多层壳相变化胶囊的构建。

Construction of layered double hydroxide-modified silica integrated multilayer shell phase change capsule with flame retardancy and highly efficient thermoregulation performance.

机构信息

National Engineering Research Center of Clean Technology in Leather Industry, Sichuan University, Chengdu, China; Key Laboratory of Leather Chemistry and Engineering of Ministry of Education, Sichuan University, Chengdu, China.

Sichuan Fire Research Institute of Ministry of Emergency Management, Chengdu 610036, China.

出版信息

J Colloid Interface Sci. 2023 Feb 15;632(Pt B):311-325. doi: 10.1016/j.jcis.2022.11.075. Epub 2022 Nov 19.

Abstract

Current energy problems have driven the development of thermal storage technology based on phase change materials (PCMs). However, the leakage and flammability of organic PCMs appeared as troublesome agendas that deserve attention. In this article, the strategy of constructing phase change capsules with paraffin wax (PW) core and multilayer shell was proposed aiming to address the above issues. For the integrated multi-layer shell, silica (SiO) acts as initial layer to encapsulate the PW core, and then tannic acid (TA) was creatively taken to bridge the subsequent flame retardant layered double hydroxides (LDH) layer on the surface of the silica shell, and polyvinyl alcohol (PVA) layer was further introduced to improve the compatibility of phase change capsules with polymer matrix. Characterization of chemical structure and morphology confirmed that phase change capsules with LDH modified silica multilayer shell (M-EPCMs) was successfully prepared. The results indicated that M-EPCMs, particularly the representative M-EPCM-5, possessed outstanding thermal stability, excellent leak proofness, good thermal regulation performance as well as long-term cycling stability. Importantly, M-EPCM-5 with the thickest LDH layer can self-extinguish when exposed to fire, and especially can keep the integrity of its shell without breakage after being heated at high temperature. Furthermore, the silicone rubber foam (SRF) composite containing M-EPCM-5 can reach UL-94V-1 level, indicating the flame retardancy of SRF matrix was improved significantly. The possible flame retardant mechanism revels that LDH can not only accelerate the formation of dense ceramic protective layer in condensed phase, but also release non-combustible gases (HO, CO) in gas phase, thus improving the fire retardancy of M-EPCMs. Therefore, the construction strategy proposed in this article represents a powerful means to improve flame retardancy and prevent leakage of phase change capsules at the same time, which will greatly expand the application scope of PCMs.

摘要

当前的能源问题推动了基于相变材料(PCM)的储热技术的发展。然而,有机 PCM 的泄漏和易燃性成为了需要关注的问题。本文提出了一种构建以石蜡(PW)为核和多层壳的相变胶囊的策略,旨在解决上述问题。对于集成的多层壳,二氧化硅(SiO)作为初始层来封装 PW 核,然后创造性地采用单宁酸(TA)在 SiO 壳表面桥接随后的阻燃层状双氢氧化物(LDH)层,进一步引入聚乙烯醇(PVA)层以提高相变胶囊与聚合物基体的相容性。化学结构和形态的表征证实了具有 LDH 改性二氧化硅多层壳的相变胶囊(M-EPCMs)的成功制备。结果表明,M-EPCMs,特别是代表性的 M-EPCM-5,具有出色的热稳定性、优异的防漏性、良好的热调节性能以及长期循环稳定性。重要的是,当暴露在火中时,具有最厚 LDH 层的 M-EPCM-5 可以自熄灭,并且尤其在高温加热后可以保持其壳的完整性而不破裂。此外,含有 M-EPCM-5 的硅橡胶泡沫(SRF)复合材料可以达到 UL-94V-1 级别,表明 SRF 基体的阻燃性显著提高。可能的阻燃机制表明,LDH 不仅可以在凝聚相中加速形成致密的陶瓷保护层,而且可以在气相中释放不可燃气体(HO、CO),从而提高 M-EPCMs 的阻燃性。因此,本文提出的构建策略代表了一种同时提高相变胶囊的阻燃性和防止泄漏的有效手段,将极大地扩展 PCM 的应用范围。

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