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Bimetallic Pt- Pd nano-catalyst: size, shape and composition matter

机译:双金属PT-PD纳米催化剂:尺寸,形状和组合物

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The goal of this work is to understand how the phase diagram (PHAD) of the platinum- palladium (Pt-Pd) alloy changes with size and shape and how it correlates with catalytic properties. By using nano-thermodynamics, the size and shape effects on the PHAD of Pt-Pd nanoparticles were determined theoretically. The PHAD of some nanoparticles (sphere, tetrahedron, octahedron, decahedron, cube, cuboctahedron and rhombic dodecahedron) exhibits a congruent melting point that becomes more and more pronounced when the size decreases. At the right of the congruent melting point i.e. close to the Pt-rich side, the coexistence region exhibits a contraction while an expansion is noticed at larger palladium concentrations. From the Gibbs free energy analysis, the stability of all the considered shapes has been determined versus temperature and composition. Furthermore, the surface segregation was also calculated and it is shown that the surface segregation is reversed at very small sizes. Indeed, below a critical size, Pd does not segregate anymore at the surface like it normally does for larger nanoparticles; but Pt does. The critical size range has been determined for each considered shape; and within this range Pt and Pd co-exist at the surface. Finally, the most catalytically active shapes are predicted to be the tetrahedron and the cube in agreement with the available experimental data and other theoretical results.
机译:这项工作的目标是了解铂 - 钯(Pt-PD)合金的相图(PhAD)如何随尺寸和形状而变化以及与催化性质相关的方式。通过使用纳米热力学,理论上确定对Pt-Pd纳米颗粒的尺寸和形状效应。一些纳米粒子(球体,四面体,八面体,癸氮二,立方体,立方体,Cuboctahedron和菱形十二锭)的斑表现出一致的熔点,当大小减少时变得越来越明显。在一致熔点的右侧,即接近PT的侧面,共存区域表现出收缩,同时在较大的钯浓度下被注意到膨胀。从GIBBS自由能量分析,所有所考虑的形状的稳定性已经确定了温度和组成。此外,还计算了表面偏析,并且示出了表面偏析在非常小的尺寸下反转。实际上,低于临界尺寸,PD在表面上不再像较大的纳米颗粒一样隔离。但是pt。每个考虑的形状都确定了临界尺寸范围;并且在该范围内,PT和PD在表面上存在。最后,最催化的活性形状预计是与可用的实验数据和其他理论结果一致的四面体和立方体。

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