HNTs Improve Flame Retardant and Thermal Insulation of the PVA/CA Composite Aerogel

IF 3.7 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY ACS Omega Pub Date : 2024-09-19 DOI:10.1021/acsomega.4c04296
Taopeng Yang, Jiayou Xu, Shu Lv
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Abstract

Porous materials are widely used in construction, batteries, electrical appliances, and other fields. In order to meet the demand for flame-retardant and thermal insulation properties of organic porous materials, in this work, poly(vinyl alcohol)/calcium alginate/halloysite nanotube (PVA/CA/HNTs) aerogels with a hierarchical pore structure at micrometer–nanometer scales were prepared through freeze-drying using PVA as the substrate. The cross-linking reactions of PVA with H3BO3 and sodium alginate (SA) with CaCl2 constructed a double cross-linking network structure within the aerogel. And the HNTs were incorporated as reinforcing agents. The experimental results showed that the PVA/CA/HNTs aerogels had excellent flame-retardant and thermal insulation properties, and the heat release rate (HRR) and total heat release (THR) were effectively reduced compared to the PVA/CA aerogel. In addition, PVA/CA/HNTs aerogels had a high limiting oxygen index (LOI 60%) and low thermal conductivity (0.040 W/m·K). While their surface was subjected to a flame (800–1000 °C) for 25 min, the temperatures of the back surface were still lower than 80 °C. The low thermal conductivity of HNTs with hollow nanotube-like structures and the excellent flame-retardant properties of CA contributed to this phenomenon. The presence of HNTs and CA facilitated the formation of a dense carbon layer during combustion, enhancing the flame retardancy for PVA. In addition, the interpenetrating cross-linking network and the unique nanopores of HNTs collectively established a hierarchical pore structure within the gel, effectively impeding substance and heat exchange between the substrate and external environment. As the flame-retardant and thermal insulating material, PVA/CA/HNTs aerogels have a promising development prospect and potential in the fields of construction, transportation, electronics, and electrical appliances.

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HNT 提高了 PVA/CA 复合气凝胶的阻燃性和隔热性能
多孔材料广泛应用于建筑、电池、电器等领域。为了满足人们对有机多孔材料阻燃和隔热性能的需求,本研究以 PVA 为基底,通过冷冻干燥制备了具有微米-纳米级分层孔结构的聚乙烯醇/海藻酸钠/海泡石纳米管(PVA/CA/HNTs)气凝胶。PVA 与 H3BO3 和海藻酸钠(SA)与 CaCl2 的交联反应在气凝胶中构建了双交联网络结构。并加入了 HNTs 作为增强剂。实验结果表明,PVA/CA/HNTs 气凝胶具有优异的阻燃和隔热性能,与 PVA/CA 气凝胶相比,有效降低了热释放率(HRR)和总热释放率(THR)。此外,PVA/CA/HNTs 气凝胶还具有较高的极限氧指数(LOI 60%)和较低的导热系数(0.040 W/m-K)。将其表面置于火焰(800-1000 °C)中 25 分钟,其背面的温度仍低于 80 °C。具有空心纳米管状结构的 HNTs 的低导热性和 CA 的优异阻燃性能促成了这一现象。HNTs 和 CA 的存在促进了燃烧过程中致密碳层的形成,增强了 PVA 的阻燃性。此外,相互渗透的交联网络和 HNTs 独特的纳米孔共同在凝胶中形成了分层孔隙结构,有效阻碍了基材与外部环境之间的物质和热交换。作为阻燃隔热材料,PVA/CA/HNTs 气凝胶在建筑、交通、电子、电器等领域具有广阔的发展前景和潜力。
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来源期刊
ACS Omega
ACS Omega Chemical Engineering-General Chemical Engineering
CiteScore
6.60
自引率
4.90%
发文量
3945
审稿时长
2.4 months
期刊介绍: ACS Omega is an open-access global publication for scientific articles that describe new findings in chemistry and interfacing areas of science, without any perceived evaluation of immediate impact.
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