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First-principles study of the effect of compressive strain on oxygen adsorption in Pd/Ni/Cu-alloy-core@Pd/Ir-alloy-shell catalysts

机译:压缩菌株对Pd / Ni / Cu-ily-Core-Core-壳催化剂氧吸附氧气吸附效应的第一原理研究

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摘要

A palladium-based (Pd-based) core@shell catalyst can be modified to achieve the desired oxygen adsorption properties by selecting an appropriate core composition, surface alloying, and compressive strain. Herein, we present the effects of compressive strain, core composition, and surface alloying in Pd3Ni@PdIr(111), Pd3CuNi@PdIr(111), and Pd3Cu@PdIr(111) alloy-core@alloy-shell catalysts on dioxygen adsorption. Using experimental lattice parameters for the unstrained catalysts, -1% to -5%, strain was systematically introduced. The calculated dioxygen-adsorption energies for the surface Pd and surface Ir atoms reveal that the Pd3CuNi@PdIr catalyst has the lowest dioxygen-adsorption energy at a given compressive strain. Bader charge calculations show that the Pd3CuNi@PdIr catalyst surface is the most charge depleted. The d-band model displays an intermediate d-band center downshift for the surface Pd atoms, and the highest downshift for the surface Ir atoms. Due to synergism between charge depletion, the d-band center shift, and the surface alloy effect, the Pd3CuNi@PdIr catalyst has the lowest dioxygen-adsorption energy. The relationship between the experimentally obtained catalyst-surface mass activity and the theoretically calculated d-band center of the surface Pd and the surface Ir is volcano shaped, with the Pd3CuNi@PdIr catalyst at the apex of the volcano. The catalytic activities of these catalysts were observed to follow the order: Pd3CuNi@PdIr > Pd3Cu@PdIr > Pd3Ni@PdIr. This work sheds light on the importance of ligand and strain effects, as well as surface alloying for the fine-tuning of alloy-core@alloy-shell-catalysts during the rational design of catalysts from first principles.
机译:基于钯的(基于Pd)的芯壳@催化剂可以被修饰通过选择适当的芯组合物,表面合金化,和压缩应变,以实现期望的氧吸附性能。在此,我们介绍了压缩菌株,核心组合物和表面合金化在PD3NI @ PDIR(111),PD3CUNI @ PDIR(111)中的影响,PD3CUI @ PDIR(111)合金 - 核心@合金 - 壳催化剂在二恶英吸附上。使用实验晶格参数对非训练催化剂,系统地引入-1%至-5%,菌株进行了系统地引入。用于表面Pd和表面IR原子的计算的二恶英吸附能量揭示了Pd3cUni @ PDIR催化剂在给定的压缩菌株处具有最低的二氧化硅吸附能量。较糟糕的电荷计算表明,PD3CUNI @ PDIR催化剂表面是最多的电荷耗尽。 D波段模型显示表面PD原子的中间D波段中心,以及表面IR原子的最高下坡。由于电荷耗尽,D波段中心换档和表面合金效应之间的协同作用,PD3CUNI @ PDIR催化剂具有最低的Dioxygen吸附能量。实验所得到的催化剂表面质量活性与表面Pd的理论计算的D频段中心与表面IR的关系,是在火山顶部的PD3CUNI @ PDIR催化剂的火山。观察到这些催化剂的催化活性遵循命令:PD3CUNI @ PDIR> PD3CU @ PDIR> PD3NI @ PDIR。这项工作揭示了配体和应变效应的重要性,以及在第一原理的催化剂的理性设计期间,在合金 - 核心壳催化剂中进行微调的表面合金化。

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  • 来源
    《New Journal of Chemistry》 |2019年第21期|共9页
  • 作者单位

    Pusan Natl Univ Dept Organ Mat Sci &

    Engn 2 Busandaehak Ro 63beon Gil Busan 46241 South Korea;

    Korea Inst Sci &

    Technol Ctr Hydrogen &

    Fuel Cell Res Hwarang Ro 14 Gil 5 Seoul 02792 South Korea;

    Korea Inst Sci &

    Technol Ctr Hydrogen &

    Fuel Cell Res Hwarang Ro 14 Gil 5 Seoul 02792 South Korea;

    Gwangju Inst Sci &

    Technol Inst Integrated Technol Sch Integrated Technol Grad Program Energy Technol 123 Cheomdangwagi Ro Gwangju 61005 South Korea;

    Pusan Natl Univ Dept Organ Mat Sci &

    Engn 2 Busandaehak Ro 63beon Gil Busan 46241 South Korea;

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  • 正文语种 eng
  • 中图分类 化学;
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