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Ostwald-Driven Phase Separation in Bimetallic Nanoparticle Assemblies

机译:双金属纳米粒子组件中的奥斯特瓦尔德驱动相分离。

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摘要

The compositional stability of bimetallic nanoparticles (NPs) is crucial for many applications. We have studied the coarsening of amorphous carbon-supported Au-Pd NPs during annealing at 873 K. Using scanning transmission electron microscopy and energy-dispersive spectroscopy measurements, we show that, despite a complete miscibility of the two metals, the particle assembly undergoes a phase separation during annealing, which leads to two distinct populations: Au-rich NPs with a mean radius of 3.5 nm and large Pd-rich NPs with a mean radius of 25 nm. Thermodynamic calculations and kinetic Monte Carlo simulations explain this behavior that is driven by the competition between surface and mixing energy and by the different mobilities of the two atomic species.
机译:双金属纳米颗粒(NPs)的成分稳定性对于许多应用至关重要。我们已经研究了在873 K退火过程中非晶碳负载的Au-Pd NP的粗化。使用扫描透射电子显微镜和能量色散谱测量,我们显示,尽管两种金属具有完全可混溶性,但粒子组装却经历了退火过程中的相分离导致了两个不同的种群:平均半径为3.5 nm的富金NP和平均半径为25 nm的大富Pd NP。热力学计算和动力学蒙特卡洛模拟解释了这种行为,这是由表面能和混合能之间的竞争以及两种原子种类的不同迁移率驱动的。

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