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用于表面受限 sc-CO2 发泡的构建取向气体阻挡层增强隔热性能的无皮聚苯硫醚泡沫

Skinless Polyphenylene Sulfide Foam with Enhanced Thermal Insulation Properties Fabricated by Constructing Aligned Gas Barrier Layers for Surface-Constrained sc-CO Foaming.

机构信息

State Key Laboratory of Polymer Materials Engineering, Polymer Research Institute of Sichuan University, Chengdu 610065, China.

出版信息

ACS Appl Mater Interfaces. 2023 Jun 28;15(25):30826-30836. doi: 10.1021/acsami.3c05454. Epub 2023 Jun 17.

Abstract

A solid skin layer inevitably forms on the foam surface for supercritical carbon dioxide (sc-CO) foaming technology, leading to deterioration of some inherent properties of polymeric foams. In this work, skinless polyphenylene sulfide (PPS) foam was fabricated with a surface-constrained sc-CO foaming method by innovatively constructing aligned epoxy resin/ferromagnetic graphene oxide composites (EP/GO@FeO) as a CO barrier layer under a magnetic field. Introduction of GO@FeO and its ordered alignment led to an obvious decrease in the CO permeability coefficient of the barrier layer, a significant increase of the CO concentration in the PPS matrix, and a decrease of desorption diffusivity in the depressurization stage, suggesting that the composite layers effectively inhibited the escape of CO dissolved in the matrix. Meanwhile, the strong interfacial interaction between the composite layer and the PPS matrix remarkably enhanced the heterogeneous nucleation of cells at the interface, resulting in elimination of the solid skin layer and formation of an obvious cellular structure on the foam surface. Moreover, by the alignment of GO@FeO in EP, the CO permeability coefficient of the barrier layer became much lower, and the cell density on the foam surface further increased with decreasing cell size, which was even higher than that of the cross section of foam, attributed to stronger heterogeneous nucleation at the interface than the homogeneous nucleation in the core region of the sample. As a result, the thermal conductivity of the skinless PPS foam reached as low as 0.0365 W/m·k, decreasing by 49.5% compared with that of regular PPS foam, showing a remarkable improvement in the thermal insulation properties of PPS foam. This work provided a novel and effective method for fabricating skinless PPS foam with enhanced thermal insulation properties.

摘要

固体皮层不可避免地会在超临界二氧化碳(sc-CO2)发泡技术的泡沫表面形成,导致聚合物泡沫的一些固有性能恶化。在这项工作中,通过创新地构建取向的环氧树脂/磁性氧化石墨烯复合材料(EP/GO@FeO)作为磁场下的 CO 阻隔层,采用表面受限的 sc-CO2 发泡方法制备了无皮层聚苯硫醚(PPS)泡沫。GO@FeO 的引入及其有序排列导致阻隔层的 CO 渗透系数显著降低,PPS 基体中 CO 浓度显著增加,降压阶段解吸扩散系数降低,表明复合层有效地抑制了溶解在基体中的 CO 的逸出。同时,复合层与 PPS 基体之间的强界面相互作用显著增强了细胞在界面处的异质成核,从而消除了固体皮层,并在泡沫表面形成明显的细胞结构。此外,通过 EP 中 GO@FeO 的取向,阻隔层的 CO 渗透系数变得更低,并且泡沫表面的细胞密度随着细胞尺寸的减小而进一步增加,甚至高于泡沫的横截面,这归因于界面处的异质成核比样品芯部的均匀成核更强。结果,无皮层 PPS 泡沫的热导率低至 0.0365 W/m·k,与常规 PPS 泡沫相比降低了 49.5%,显示出 PPS 泡沫的隔热性能得到了显著改善。这项工作为制备具有增强隔热性能的无皮层 PPS 泡沫提供了一种新颖而有效的方法。

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