天然蒙脱石制备催化剂及其在碳纳米球合成中的应用

Q4 Chemistry
Altantuya Ochirkhuyag, Ulambayar Rentsennorov, Davaabal Batmunkh, Oyun-Erdene Gendenjamts, E. Odbaatar, Tserendagva Tsend-Ayush, J. Temuujin
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引用次数: 0

摘要

在发达国家,从天然矿物和高纯度化学品中提取的纳米颗粒都得到了广泛的研究,而在蒙古等发展中国家,基于天然矿物的纳米颗粒因其生产成本低且适用于国内天然矿物而更受关注。对于天然矿物基纳米材料的合成,重要的是首先确定局部矿物的化学组成和物理结构及其可能的加工路线。我们采用了一种环保的碱性浸出程序,在90°C下24小时从粘土矿物中回收二氧化硅。我们应用有机表面活性剂(CTAB)和简单的共沉淀方法来形成铁掺杂的二氧化硅纳米颗粒。因此,我们使用铁掺杂的二氧化硅纳米颗粒作为基底和催化剂,在氩气和乙炔气氛中,在750°C下合成碳纳米球1小时。结果,获得了大量的超疏水碳纳米球(CNS)。使用XRD、XRF、SEM、EDS、TEM和FTIR光谱仪对纳米二氧化硅基底、非功能化碳纳米球和功能化碳纳米球(CNS)样品的物理化学性质进行了表征。铁掺杂矿物衍生的纳米二氧化硅颗粒表现出高催化效率和生产大量增值碳纳米球的潜力。超疏水性中枢神经系统可用于多种应用,特别是药物递送;然而,要在水性和非水性介质中使用CNS,可以使用不同的氧化剂来改变CNS的超疏水特性。检测了中枢神经系统疏水性的变化,并提出了可能的氧化剂。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Preparation of catalyst from natural montmorillonite mineral and its application in the synthesis of carbon nanosphere
In developed countries, nanoparticles derived from natural minerals and high-purity chemicals both are widely studied, while in developing countries like Mongolia, the natural minerals-based nanoparticles have more interest because of the low production cost and applicability of domestic natural minerals for their production. For the synthesis of natural mineral-based nanomaterials, it is important first to define the chemical composition and physical structure of local minerals and their possible processing route. We employed an environmentally friendly alkaline leaching procedure to recover silica from the clay mineral at 90°C for 24 hours. We applied an organic surfactant (CTAB) and a simple coprecipitation approach to form iron-doped silica nanoparticles. Consequently, we used iron-doped silica nanoparticles as a substrate and catalyst for the synthesis of carbon nanosphere at 750 °C for 1 hour in an argon and acetylene gas atmosphere. As a result, vast quantities of superhydrophobic carbon nanospheres (CNS) were obtained. The physicochemical properties of nanosilica substrate, non-functionalized carbon nanosphere, and functionalized carbon nanosphere (CNS) samples were characterized using XRD, XRF, SEM, EDS, TEM, and FTIR spectrometer. Iron-doped mineral-derived nanosilica particles demonstrated high catalytic efficiency and the potential to produce a large amount of value-added carbon nanospheres. Superhydrophobic CNS can be used in a variety of applications, particularly drug delivery; however, to use CNS in both aqueous and non-aqueous media, the superhydrophobic properties of CNS can be modified using different oxidizers. The changes in hydrophobicity of the CNS were examined and suggested possible oxidizing agents.
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来源期刊
Mongolian Journal of Chemistry
Mongolian Journal of Chemistry Materials Science-Materials Chemistry
CiteScore
1.10
自引率
0.00%
发文量
5
审稿时长
20 weeks
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