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钼表面掺杂剂在提高八面体 PtNi 纳米颗粒的 ORR 性能中的作用。

Roles of Mo Surface Dopants in Enhancing the ORR Performance of Octahedral PtNi Nanoparticles.

机构信息

Department of Chemistry and Chemical Biology, Northeastern University , Boston, Massachusetts 02115, United States.

Department of Materials Science and Engineering, University of California , Los Angeles, California 90095, United States.

出版信息

Nano Lett. 2018 Feb 14;18(2):798-804. doi: 10.1021/acs.nanolett.7b04007. Epub 2018 Jan 3.

Abstract

Doping with a transition metal was recently shown to greatly boost the activity and durability of PtNi/C octahedral nanoparticles (NPs) for the oxygen reduction reaction (ORR), but its specific roles remain unclear. By combining electrochemistry, ex situ and in situ spectroscopic techniques, density functional theory calculations, and a newly developed kinetic Monte Carlo model, we showed that Mo atoms are preferentially located on the vertex and edge sites of Mo-PtNi/C in the form of oxides, which are stable within the wide potential window of the electrochemical cycle. These surface Mo oxides stabilize adjacent Pt sites, hereby stabilizing the octahedral shape enriched with (111) facets, and lead to increased concentration of Ni in subsurface layers where they are protected against acid dissolution. Consequently, the favorable PtNi(111) structure for the ORR is stabilized on the surface of PtNi/C NPs in acid against voltage cycling. Significantly, the unusual potential-dependent oxygen coverage trend on Mo-doped PtNi/C NPs as revealed by the surface-sensitive Δμ analysis suggests that the Mo dopants may also improve the ORR kinetics by modifying the coordination environments of Pt atoms on the surface. Our studies point out a possible way to stabilize the favorable shape and composition established on conceptual catalytic models in practical nanoscale catalysts.

摘要

最近的研究表明,掺杂过渡金属可以极大地提高 PtNi/C 八面体纳米颗粒(NPs)在氧还原反应(ORR)中的活性和耐久性,但具体作用仍不清楚。通过结合电化学、非原位和原位光谱技术、密度泛函理论计算以及新开发的动力学蒙特卡罗模型,我们表明 Mo 原子优先以氧化物的形式存在于 Mo-PtNi/C 的顶点和边缘位置,在电化学循环的宽电位窗口内稳定存在。这些表面 Mo 氧化物稳定相邻的 Pt 位,从而稳定富含(111)面的八面体形状,并导致 Ni 在次表层的浓度增加,在次表层 Ni 受到酸的保护而不易溶解。因此,在酸性条件下,PtNi/C NPs 表面的 PtNi(111)结构在电压循环中稳定存在,有利于 ORR。重要的是,通过表面敏感的 Δμ 分析揭示的 Mo 掺杂 PtNi/C NPs 上异常的电位依赖氧覆盖趋势表明,Mo 掺杂剂还可以通过改变表面 Pt 原子的配位环境来改善 ORR 动力学。我们的研究指出了一种在实际纳米尺度催化剂中稳定概念性催化模型中建立的有利形状和组成的可能途径。

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