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离子液体在半导体金属硫族化合物纳米晶体和纳米棒合成中的应用。

Use of ionic liquids in the synthesis of nanocrystals and nanorods of semiconducting metal chalcogenides.

作者信息

Biswas Kanishka, Rao C N R

机构信息

Chemistry and Physics of Materials Unit, DST unit on Nanoscience and CSIR Centre of Excellence in Chemistry, Jawaharlal Nehru Centre for Advanced Scientific Research, Jakkur P.O., Bangalore 560064, India.

出版信息

Chemistry. 2007;13(21):6123-9. doi: 10.1002/chem.200601733.

DOI:10.1002/chem.200601733
PMID:17497619
Abstract

We have synthesized nanoparticles of hexagonal CdS in the diameter range 3-13 nm by the reaction of cadmium acetate dihydrate with thioacetamide in imidazolium [BMIM]-based ionic liquids. We have obtained three different particle sizes of CdS by changing the anion of the ionic liquid. Addition of trioctylphosphine oxide (TOPO) to the reaction mixture causes greater monodispersity as well as smaller particle size, while addition of ethylenediamine produces nanorods of 7 nm average diameter. Hexagonal ZnS and cubic PbS nanoparticles with average diameters of 3 and 10 nm, respectively, have been prepared by the reaction of the metal acetates with thioacetamide in [BMIM][BF4]. Hexagonal CdSe nanoparticles with an average diameter 12 nm were obtained by the reaction of cadmium acetate dihydrate with dimethylselenourea in [BMIM][BF4]. In this case also we observe the same effect of the addition of TOPO as in the case of CdS. Addition of ethylenediamine to the reaction mixture gives rise to nanorods. ZnSe nanowires with a cubic structures, possible diameters in the range 70-100 nm by the reaction of zinc acetate dihydrate with dimethylselenourea in [BMIM][MeSO4]. The nanostructures obtained are single crystalline in all the cases. Most of the nanostructures show characteristic UV/Vis absorption and photoluminescence emission spectra. The thermodynamically most stable structures are generally produced in the synthesis carried out in ionic liquids.

摘要

我们通过在咪唑鎓[BMIM]基离子液体中使二水合醋酸镉与硫代乙酰胺反应,合成了直径范围为3 - 13 nm的六方相硫化镉纳米颗粒。通过改变离子液体的阴离子,我们获得了三种不同粒径的硫化镉。向反应混合物中添加三辛基氧化膦(TOPO)可使分散性更好且粒径更小,而添加乙二胺则会生成平均直径为7 nm的纳米棒。通过在[BMIM][BF4]中使金属醋酸盐与硫代乙酰胺反应,分别制备了平均直径为3和10 nm的六方相硫化锌和立方相硫化铅纳米颗粒。通过在[BMIM][BF4]中使二水合醋酸镉与二甲基硒脲反应,获得了平均直径为12 nm的六方相硒化镉纳米颗粒。在这种情况下,我们也观察到添加TOPO与硫化镉情况相同的效果。向反应混合物中添加乙二胺会生成纳米棒。通过在[BMIM][MeSO4]中使二水合醋酸锌与二甲基硒脲反应,得到了具有立方结构、直径可能在70 - 100 nm范围内的硒化锌纳米线。在所有情况下获得的纳米结构都是单晶的。大多数纳米结构都显示出特征性的紫外/可见吸收光谱和光致发光发射光谱。在离子液体中进行的合成通常会产生热力学上最稳定的结构。

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