首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Tuning high aqueous phase uptake in nonionic water-in-oil microemulsions for the synthesis of Mn-Zn ferrite nanoparticles: Phase behavior, characterization, and nanoparticle synthesis
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Tuning high aqueous phase uptake in nonionic water-in-oil microemulsions for the synthesis of Mn-Zn ferrite nanoparticles: Phase behavior, characterization, and nanoparticle synthesis

机译:调整用于制备Mn-Zn铁氧体纳米粒子的非离子油包水微乳液中的高水相吸收:相行为,表征和纳米粒子合成

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In this work, the formation of water-in-oil (w/o) microemulsions with high aqueous phase uptake in a nonionic surfactant system is investigated as potential media for the synthesis of Mn-Zn ferrite nanoparticles. A comprehensive study based on the phase behavior of systems containing precursor salts, on one hand, and precipitating agent, on the other hand, was carried out to identify key regions on (a) pseudoternary phase diagrams at constant temperature (50 °C), and (b) pseudobinary phase diagrams at constant surfactant (S):oil(O) weight ratio (S:O) as a function of temperature. The internal structure and dynamics of microemulsions were studied systematically by conductivity and self-diffusion coefficient determinations (FT PGSE 1H NMR). It was found that nonpercolated w/o microemulsions could be obtained by appropriate tuning of composition variables and temperature, with aqueous phase concentrations as high as 36 wt % for precursor salts and 25 wt % for precipitating agent systems. Three compositions with three different dynamic behaviors (nonpercolated and percolated w/o, as well as bicontinuous microemulsions) were selected for the synthesis of Mn-Zn ferrites, resulting in nanoparticles with different characteristics. Spinel structure and superparamagnetic behavior were obtained. This study sets firm basis for a systematic study of Mn-Zn ferrite nanoparticle synthesis via different scenarios of microemulsion dynamics, which will contribute to a better understanding on the relationship of the characteristics of the obtained materials with the properties of the reaction media.
机译:在这项工作中,研究了在非离子表面活性剂体系中具有高水相吸收率的油包水(w / o)微乳状液的形成,作为合成Mn-Zn铁氧体纳米粒子的潜在介质。一方面,根据包含前体盐和沉淀剂的系统的相行为,进行了全面研究,以在(a)恒定温度(50°C)的伪三元相图中确定关键区域, (b)在恒定表面活性剂(S):油(O)重量比(S∶O)下随温度变化的假二元相图。通过电导率和自扩散系数测定(FT PGSE 1H NMR)系统地研究了微乳液的内部结构和动力学。发现通过适当调节组成变量和温度可以获得未渗透的w / o微乳液,其中前体盐的水相浓度高达36wt%,而沉淀剂系统的水相浓度高达25wt%。选择三种具有三种不同动态行为的组合物(无渗透和无渗透,以及双连续微乳液)来合成Mn-Zn铁氧体,从而得到具有不同特性的纳米粒子。获得了尖晶石结构和超顺磁行为。这项研究为通过不同的微乳液动力学方案系统研究Mn-Zn铁氧体纳米粒子的系统研究奠定了坚实的基础,这将有助于更好地理解所得材料的特性与反应介质的性质之间的关系。

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