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首页> 外文期刊>Applied clay science >Nanoscale structural and morphological features of kaolinite nanoscrolls
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Nanoscale structural and morphological features of kaolinite nanoscrolls

机译:纳米石纳米筒的纳米级结构和形态特征

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One-dimensional kaolinite nanoscrolls have been arousing great interest due to their applicability in advanced materials for adsorption and slow release of reagents, as well as in nanoscale reactors and carriers. Production of high-quality halloysite-like nanoscrolls with controlled morphology, however, remains challenging as there is a lack of understanding of the curling process of kaolinite layers on the atomic scale. In the present work, the nanoscrolls were efficiently produced from the readily available natural kaolinite using a two-pot solvothermal exfoliation of the kaolinite-dimethyl sulfoxide, kaolinite-urea, and kaolinite-N-methylformamide precursors. The structures, sizes, shapes and crystallographic properties of the produced halloysite-like nanoscrolls were characterized using X-ray diffraction (XRD), high-resolution transmission electron microscopy (HRTEM) and electron tomography in scanning transmission mode (STEM). In order to avoid structural disintegration of the highly electron beam-sensitive nanoscrolls, we used a low imaging current (70-240 e/A(2)); as a result, the acquisition of structure images was possible. In contrast to the triclinic symmetry of kaolinite, electron diffraction patterns suggest a hexagonal symmetry of exfoliated layers. Both HRTEM and STEM tomography show partially and completely rolled up layers, with the axis of curvature being parallel to either the a or b axes. The methanolgrafted nanoscrolls have a variable but larger basal spacing (from 0.76 to 0.90 nm) than the value in ordered kaolinite (0.72 nm). Their external diameters range from 22 to 75 nm, lengths from 218 to 2287 nm, aspect ratios from 5 to 74, and the scrolls have recognizable chirality. Crystallographic image processing of HRTEM structure images suggest that the tetrahedral sheet can be on either the outer or the inner sides of the nanoscrolls. Molecular simulation results for the curled kaolinite layers are consistent in their details with the experimental observations, suggesting that the layers may roll up either way.
机译:一维高岭土纳米克洛尔由于其在先进材料中的吸附和缓慢释放试剂以及纳米级反应器和载体中而引起了极大的兴趣。然而,由于缺乏了解原子尺度的高岭石层的卷曲过程,生产高质量的HalloySite纳米曲氏植物的生产仍然具有挑战性。在本作工作中,使用高岭石 - 二甲基亚甲醚,高岭石 - 脲和高岭石 - N-甲基甲酰胺前体的双罐溶剂热剥离,从易于获得的天然高岭岩中有效地生产纳米卷。使用X射线衍射(XRD),高分辨率透射电子显微镜(HRTEM)和电子断层扫描以扫描传动模式(Stew)的构造,尺寸,形状和晶体特性的结构,尺寸,形状和晶体特性。为了避免高电子束敏感纳米筒的结构崩解,我们使用了低成像电流(70-240 E / A(2));结果,可以获得结构图像的获取。与Koolinite的三级对称相反,电子衍射图案表明了剥落层的六边形对称。 HRTEM和阀座断层摄影术两者部分和完全卷起层,曲率轴线平行于A或B轴。甲醇移植的纳米杆状有变量但较大的基础间距(0.76至0.90nm),而不是有序高岭石(0.72nm)的值。它们的外径范围为22至75nm,长度为218至2287nm,宽度比5至74,滚动具有可识别的手性。 HRTEM结构图像的晶体图像处理表明,四面体板可以位于纳米筒的外侧或内侧。卷曲高岭石层的分子模拟结果在其细节中与实验观察结果一致,表明层可以卷起任何一种方式。

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