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Impact of Sulfuric Acid Treatment of Halloysite on Physico-Chemic Property Modification

机译:硫酸处理埃洛石对理化性质的影响

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摘要

Halloysite (HNT) is treated with sulfuric acid and the physico-chemical properties of its morphology, surface activity, physical and chemical properties have been investigated when HNT is exposed to sulfuric acid with treatment periods of 1 h (H1), 3 h (H3), 8 h (H8), and 21 h (H21). The significance of this and similar work lies in the importance of using HNT as a functional material in nanocomposites. The chemical structure was characterized by Fourier transform infrared spectroscopy (FTIR). The spectrum demonstrates that the hydroxyl groups were active for grafting modification using sulfuric acid, promoting a promising potential use for halloysite in ceramic applications as filler for novel clay-polymer nanocomposites. From the X-ray diffraction (XRD) spectrum, it can be seen that the sulfuric acid breaks down the HNT crystal structure and alters it into amorphous silica. In addition, the FESEM images reveal that the sulfuric acid treatment dissolves the AlO6 octahedral layers and induces the disintegration of SiO4 tetrahedral layers, resulting in porous nanorods. The Bruncher-Emmett-Teller (BET) surface area and total pore volume of HNTs showed an increase. The reaction of the acid with both the outer and inner surfaces of the nanotubes causes the AlO6 octahedral layers to dissolve, which leads to the breakdown and collapse of the tetrahedral layers of SiO4. The multi-fold results presented in this paper serve as a guide for further HNT functional treatment for producing new and advanced nanocomposites.
机译:用硫酸处理埃洛石(HNT),并研究了HNT在1 h(H1),3 h(H3)处理期间暴露于硫酸中时的形态,表面活性,理化性质的理化性质),8小时(H8)和21小时(H21)。这项工作和类似工作的重要性在于在纳米复合材料中使用HNT作为功能材料的重要性。化学结构通过傅里叶变换红外光谱(FTIR)表征。该光谱表明,羟基对于使用硫酸进行的接枝改性具有活性,从而促进了埃洛石在陶瓷应用中作为新型粘土-聚合物纳米复合材料的填料的潜在应用前景。从X射线衍射(XRD)光谱可以看出,硫酸分解了HNT晶体结构,并将其转变为无定形二氧化硅。此外,FESEM图像显示,硫酸处理可溶解AlO6八面体层并引起SiO4四面体层的崩解,从而形成多孔纳米棒。 HNT的Bruncher-Emmett-Teller(BET)表面积和总孔体积显示增加。酸与纳米管的外表面和内表面的反应导致AlO6八面体层溶解,从而导致SiO4的四面体层破裂和塌陷。本文介绍的多重结果可作为进一步指导HNT功能处理以生产新型和高级纳米复合材料的指南。

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