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The role of gold atom concentration in the formation of Cu–Au nanoparticles from the gas phase

机译:金原子浓度在气相形成Cu-Au纳米粒子中的作用

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摘要

The synthesis of bimetallic nanoparticles need to be controlled in order to obtain particles of a desired size, spatial structure, and chemical composition. In the synthesis of the Cu–Au nanoparticles studied here, nanoparticles can be obtained through either chemical or physical methods, each of which has its own drawbacks. Although it is very difficult to achieve the required target chemical composition of nanoparticles during chemical synthesis, their size can be stabilized quite well. In turn, physical synthesis methods mainly allow to maintain the required chemical composition; however, the size of the resulting particles varies significantly. To solve this issue, we studied the formation of Cu–Au nanoparticles with different chemical compositions from a gaseous medium using computer molecular dynamics (MD) simulation. The aim was to determine the effect of the concentration of gold atoms on the size and on the actual chemical composition of the formed bimetallic nanoparticles. The modeled region had a cubic shape with a face length of 1350 Bohr radii and contained a total of 91125 copper and gold atoms uniformly distributed in space. Thus, based on the results of the MD simulation, it was concluded that an increase in the percentage of gold atoms in the initial vapor phase led to a decrease in the size of the synthesized nanoparticles. In addition, it was found that clusters with a size of more than 400–500 atoms, regardless of the chemical composition of the initial vapor phase, basically corresponded to a given target composition.
机译:需要控制双金属纳米颗粒的合成,以获得所需尺寸,空间结构和化学组成的颗粒。在这里研究的Cu-Au纳米颗粒的合成中,纳米颗粒可以通过化学或物理方法获得,每个化学或物理方法具有其自身的缺点。虽然在化学合成期间达到纳米颗粒的所需目标化学成分非常困难,但它们的尺寸可以很好地稳定。反过来,物理合成方法主要允许维持所需的化学成分;然而,所得颗粒的尺寸显着变化。为了解决这个问题,我们使用计算机分子动力学(MD)模拟,研究了使用不同化学组合物的Cu-Au纳米颗粒的形成。目的是确定金原子浓度对所形成的双金属纳米颗粒的实际化学组成的影响。模型区域具有三次形状,面部长度为1350 BoHR半径,并含有总共91125铜和金原子在空间中分布。因此,基于MD模拟的结果,得出结论是,初始气相中的金原子百分比的增加导致合成纳米颗粒的尺寸的降低。此外,发现尺寸超过400-500原子的簇,无论初始气相的化学成分如何,基本上对应于给定的靶组合物。

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