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在水相表面活性剂溶液中合成硫纳米粒子。

Synthesis of sulfur nanoparticles in aqueous surfactant solutions.

机构信息

Department of Chemical Engineering, National Institute of Technology, Rourkela 769 008, Orissa, India.

出版信息

J Colloid Interface Sci. 2010 Mar 15;343(2):439-46. doi: 10.1016/j.jcis.2009.12.004. Epub 2009 Dec 6.

Abstract

Sulfur is a widely used element in different applications such as fertilizers, pharmaceuticals, rubber, fiber industries, bioleaching processes, anti microbial agents, insecticides, and fumigants, etc. Nanosize sulfur particles are useful for pharmaceuticals, modification of carbon nano tubes, and synthesis of nano composites for lithium batteries. In this study we report a surfactant assisted route for the synthesis of sulfur nanoparticles by an acid catalyzed precipitation of sodium thiosulphate. We use both the inorganic and organic acids, and find that organic acid gives lower size sulfur particles. The size of the particles also depends on the reactant concentration and acid to reactant ratio. The effect of different surfactants (TX-100, CTAB, SDBS, and SDS) on particle size shows that the surfactant can significantly reduce the particle size without changing the shape. The size reducing ability is not same for all the surfactants, depending on the type of surfactant. The anionic surfactant SDBS is more effective for obtaining a uniform size in both the acid media. Whereas, the lowest size (30 nm) particles were obtained in a certain reactant concentration range using CTAB surfactant. The objective of this study is to synthesize sulfur nanoparticles in aqueous media and also study the effect of different surfactants on particle size.

摘要

硫是一种在肥料、制药、橡胶、纤维工业、生物浸出过程、抗菌剂、杀虫剂和熏蒸剂等不同应用中广泛使用的元素。纳米硫颗粒可用于制药、碳纳米管改性和合成用于锂电池的纳米复合材料。在这项研究中,我们报告了一种通过酸催化沉淀硫代硫酸钠来合成硫纳米颗粒的表面活性剂辅助途径。我们使用了无机酸和有机酸,并发现有机酸会得到更小尺寸的硫颗粒。颗粒的尺寸还取决于反应物的浓度和酸与反应物的比例。不同表面活性剂(TX-100、CTAB、SDBS 和 SDS)对粒径的影响表明,表面活性剂可以在不改变形状的情况下显著减小粒径。减小粒径的能力因表面活性剂的类型而异。阴离子表面活性剂 SDBS 在酸介质中更有效地获得均匀的粒径。然而,在使用 CTAB 表面活性剂时,在一定的反应物浓度范围内可以获得最小的粒径(30nm)。本研究的目的是在水介质中合成硫纳米颗粒,并研究不同表面活性剂对粒径的影响。

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