Surface Segregation in AgAuCuPdPt High Entropy Alloy: Insights From Molecular Simulations

Chinmay Dahale, Sriram Goverapet Srinivasan, S. Mishra, S. Maiti, B. Rai
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引用次数: 1

Abstract

High entropy alloys (HEAs) are emerging as a novel class of superior catalysts for diverse chemical conversions. The activity of a catalyst is intimately related to the composition and atomic structure at its surface. In this work, we used embedded atom (EAM) potential based Monte Carlo – Molecular Dynamics simulations to study surface segregation in the equimolar AuAgCuPdPt HEA, that was recently shown to be an efficient catalyst for CO2 electrochemical reduction. Firstly, EAM potentials were extensively validated against experimental segregation data for several different binary and ternary compositions. Subsequently, simulations on the HEA were carried out for four different surface orientations, spherical and cubical nanoparticles, to obtain detailed structural and concentration profiles normal to the surface. In all cases, Ag atoms were found to preferentially segregate to the surface while the subsurface layer mainly consisted of Au atoms. No Pt atoms were found on the surface layer for all systems. A detailed analysis neighborhood of each surface site revealed that the atoms formed a finite number of chemically unique clusters. The percentage of chemically unique sites were larger for elements with lower concentration at the surface. Together with the physical diversity surrounding each site, the enrichment of one or more element(s) at the surface also increased its number of unique catalytically active sites. Results from our work suggest that HEAs are prone to surface segregation and such effects must be taken into consideration while modeling the surface chemistry of these materials.
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AgAuCuPdPt高熵合金的表面偏析:来自分子模拟的见解
高熵合金(HEAs)是一类用于多种化学转化的新型优良催化剂。催化剂的活性与其表面的组成和原子结构密切相关。在这项工作中,我们使用嵌入原子(EAM)电位为基础的蒙特卡罗-分子动力学模拟来研究等摩尔AuAgCuPdPt HEA的表面偏析,最近被证明是一种有效的二氧化碳电化学还原催化剂。首先,利用实验分离数据对几种不同二元和三元组成的EAM势进行了广泛的验证。随后,在HEA上对四种不同表面取向(球形和立方体)的纳米颗粒进行了模拟,以获得与表面垂直的详细结构和浓度分布。在所有情况下,Ag原子优先向表面分离,而亚表面层主要由Au原子组成。所有体系的表层均未发现铂原子。对每个表面位置的详细分析表明,原子形成了有限数量的化学上独特的簇。表面浓度较低的元素的化学独特位点的百分比较大。再加上每个位点周围的物理多样性,表面一个或多个元素的富集也增加了其独特的催化活性位点的数量。我们的工作结果表明,HEAs容易发生表面偏析,在模拟这些材料的表面化学时必须考虑到这种影响。
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