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Molten-droplet synthesis of composite CdSe hollow nanoparticles

机译:复合CdSe空心纳米粒子的熔滴合成

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Many colloidal synthesis routes are not scalable to high production rates, especially for nanoparticles of complex shape or composition, due to precursor expense and hazards, low yields, and the large number of processing steps. The present work describes a strategy to synthesize hollow nanoparticles (HNPs) out of metal chalcogenides, based on the slow heating of a low-melting-point metal salt, an elemental chalcogen, and an alkylammonium surfactant in octadecene solvent. The synthesis and characterization of CdSe HNPs with an outer diameter of 15.6 ± 3.5 nm and a shell thickness of 5.4 ± 0.9 nm are specifically detailed here. The HNP synthesis is proposed to proceed with the formation of alkylammonium-stabilized nano-sized droplets of molten cadmium salt, which then come into contact with dissolved selenium species to form a CdSe shell at the droplet surface. In a reaction-diffusion mechanism similar to the nanoscale Kirkendall effect it is speculated that the cadmium migrates outwardly through this shell to react with more selenium, causing the CdSe shell to thicken. The proposed CdSe HNP structure comprises a polycrystalline CdSe shell coated with a thin layer of amorphous selenium. Photovoltaic device characterization indicates that HNPs have improved electron transport characteristics compared to standard CdSe quantum dots, possibly due to this selenium layer. The HNPs are colloidally stable in organic solvents even though carboxylate, phosphine, and amine ligands are absent; stability is attributed to octadecene-selenide species bound to the particle surface. This scalable synthesis method presents opportunities to generate hollow nanoparticles with increased structural and compositional variety.
机译:由于前体费用和危害,低产量以及大量加工步骤,许多胶体合成路线无法扩展到高生产率,特别是对于形状或组成复杂的纳米粒子。本工作描述了一种在十八碳烯溶剂中缓慢加热低熔点金属盐,元素硫属元素和烷基铵表面活性剂的方法,从金属硫属元素化物合成空心纳米颗粒(HNP)的策略。此处专门详细介绍了CdSe HNP的合成和表征,该CdSe HNP的外径为15.6±3.5 nm,壳厚度为5.4±0.9 nm。提议进行HNP合成以形成烷基铵稳定的熔融镉盐纳米大小的液滴,然后使其与溶解的硒物质接触,在液滴表面形成CdSe壳。在类似于纳米柯肯达尔效应的反应扩散机理中,推测镉通过该壳向外迁移,与更多的硒反应,导致CdSe壳变厚。所提出的CdSe HNP结构包括涂覆有非晶硒薄层的多晶CdSe壳。光伏器件的表征表明,与标准CdSe量子点相比,HNP具有改善的电子传输特性,这可能是由于该硒层造成的。即使不存在羧酸盐,膦和胺配体,HNP在有机溶剂中也是胶体稳定的。稳定性归因于键合在颗粒表面的十八碳硒化物。这种可扩展的合成方法提供了产生具有增加的结构和组成多样性的空心纳米颗粒的机会。

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