论文标题
元素(不可能)确定在离子液体中共同输入的多纳米颗粒的相形成
Elemental (im-)miscibility determines phase formation of multinary nanoparticles co-sputtered in ionic liquids
论文作者
论文摘要
非平衡合成方法允许将大量不知名元素合金为多纳米颗粒,从而扩大了新材料的设计空间。尽管将溅射到固体底物上可以将不混溶的元素结合到薄膜实心溶液中,但对于在离子液体中施加纳米颗粒的溅射尚不清楚。因此,通过在离子液体中溅射在离子液体中产生不混溶元素的纳米颗粒的适用性,可以通过共同估算系统的Au-Cu(可混合),Au-Ru和Cu-Ru(均为不混溶)和Au-Cu-Ru,以及在离子1-二甲基-3-甲基二硫代硫酸含量的表面上的Au-Cu-Ru [BMIM] [(TF)2n]。分析了溅射的纳米颗粒,以获得(i)在溅射到离子液体表面和(ii)信息上时,纳米颗粒的一般形成过程的知识,如果合金纳米颗粒可以合成,并且(iii)是否可以合成不可见元素的合金纳米颗粒,以及(iii)是否有效的固体规则对固体抗性有效,有效地有效地固定固定性。使用密度功能理论的伴随的原子模拟与不同大小和订购的簇进行了证实,Au-Cu的混乱性以及Au-Ru和Cu-Ru的不混溶性决定了纳米颗粒的热力学稳定性。基于NP/IL系统有关NP稳定性的匹配实验和理论结果,开发了ILS中多元NP的形成模型。
Non-equilibrium synthesis methods allow to alloy bulk-immiscible elements into multinary nanoparticles, which broadens the design space for new materials. Whereas sputtering onto solid substrates can combine immiscible elements into thin film solid solutions, this is not clear for sputtering of nanoparticles in ionic liquids. Thus, the suitability of sputtering in ionic liquids for producing nanoparticles of immiscible elements is investigated by co-sputtering the systems Au-Cu (miscible), Au-Ru and Cu-Ru (both immiscible), and Au-Cu-Ru on the surface of the ionic liquid 1-butyl-3-methylimidazolium bis-trifluoromethylsulfonyl)imide [Bmim][(Tf)2N]. The sputtered nanoparticles were analyzed to obtain (i) knowledge concerning the general formation process of nanoparticles when sputtering onto ionic liquid surfaces and (ii) information, if alloy nanoparticles of immiscible elements can be synthesized as well as (iii) evidence if the Hume-Rothery rules for solid solubility are valid for sputtered nanoparticles. Accompanying atomistic simulations using density-functional theory for clusters of different size and ordering confirm that the miscibility of Au-Cu and the immiscibility of Au-Ru and Cu-Ru govern the thermodynamic stability of the nanoparticles. Based on the matching experimental and theoretical results for the NP/IL-systems concerning NP stability, a formation model of multinary NPs in ILs was developed.