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Ultra-small photoluminescent silicon-carbide nanocrystals by atmospheric-pressure plasmas

机译:常压等离子体制备的超小型光致发光碳化硅纳米晶体

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摘要

Highly size-controllable synthesis of free-standing perfectly crystalline silicon carbide nanocrystals has been achieved for the first time through a plasma-based bottom-up process. This low-cost, scalable, ligand-free atmospheric pressure technique allows fabrication of ultra-small (down to 1.5 nm) nanocrystals with very low level of surface contamination, leading to fundamental insights into optical properties of the nanocrystals. This is also confirmed by their exceptional photoluminescence emission yield enhanced by more than 5 times by reducing the nanocrystals sizes in the range of 1-5 nm, which is attributed to quantum confinement in ultra-small nanocrystals. This method is potentially scalable and readily extendable to a wide range of other classes of materials. Moreover, this ligand-free process can produce colloidal nanocrystals by direct deposition into liquid, onto biological materials or onto the substrate of choice to form nanocrystal films. Our simple but efficient approach based on non-equilibrium plasma environment is a response to the need of most efficient bottom-up processes in nanosynthesis and nanotechnology.
机译:通过基于等离子体的自下而上工艺,首次实现了可自由控制的完美结晶碳化硅纳米晶体的高度可控的合成。这种低成本,可扩展,无配体的大气压技术允许制造具有极低表面污染水平的超小(低至1.5 nm)纳米晶体,从而使人们对纳米晶体的光学性能有了基本认识。通过将纳米晶体的尺寸减小在1-5 nm范围内,将其超乎寻常的光致发光产量提高了5倍以上,这也得到了证实,这归因于超小型纳米晶体的量子限制。这种方法具有潜在的可扩展性,并且很容易扩展到其他种类的材料。而且,这种无配体的方法可以通过直接沉积到液体中,生物材料上或选择的基底上以形成纳米晶体膜,从而产生胶体纳米晶体。我们基于非平衡等离子体环境的简单而有效的方法是对纳米合成和纳米技术中最有效的自下而上过程的需求的回应。

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