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首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Synergetic effects of strain engineering and substrate defects on generating highly efficient single- atom catalysts for CO oxidation
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Synergetic effects of strain engineering and substrate defects on generating highly efficient single- atom catalysts for CO oxidation

机译:应变工程和衬底缺陷对CO氧化产生高效单原子催化剂的协同作用

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Developing highly efficient single-atom catalysts (SACs) containing isolated metal atom monomers dispersed on appropriate substrates has surged to the forefront of heterogeneous catalysis in recent years, driven by both specificity of unique active sites and cost-effectiveness of the approach. Nevertheless, the instability of SACs, i.e., preferential sintering during chemical reactions, dramatically hinders their development and applications. Here, by means of first-principles calculations, taking electronically closed-shell Au-2 and open-shell Pd-2 (PdAu) on WTe2 as prototypical examples, we investigate the strengthening effect of electronic metal-substrate interactions (EMSI) via a synergetic effect of strain engineering and substrate defects to prevent clustering in the initial stage of SACs. It is noted that on the perfect WTe2 (P-WTe2), both Au and Pd adatoms prefer dimerization to separation. However, when a defect exists on the same WTe2 substrate (D-WTe2), the situation changes considerably. Under tension, relative to the electronically closed-shell Au-2 dimer, an electronically open-shell Au monomer at the Te vacancy site (V-Te) obtains more charge from the WTe2 substrate, leading to stronger EMSI. However, when an electronically open-shell PdAu (Pd-2) dimer is located on the compressively strained D-WTe2, more charge can be transferred to both of the atoms with decreased distances, and therefore the increased Coulomb repulsive interactions separate them to be stable SACs with tunable catalysis for CO oxidation. The present findings demonstrate the importance of substrate engineering in stabilizing SACs and offer a valid approach in fabricating SAC systems.
机译:近年来,开发分散在适当的基材上的含有分散的金属原子单体的高效单原子催化剂(Sacs)溶于异质催化的最前沿,其既有独特的有源网站的特异性和方法的成本效益驱动。然而,囊的不稳定性,即在化学反应期间优先烧结,显着阻碍了他们的发展和应用。这里,通过第一原理计算,在WTE2上以电子闭合壳AU-2和开放式壳PD-2(PDAU)作为原型示例,我们通过A调查电子金属 - 衬底相互作用(EMSI)的强化效果应变工程和衬底缺陷的协同作用,防止囊初始阶段聚类。注意,在完美的WTE2(P-WTE2)上,AU和PD ADATOMS都更倾向于分离。然而,当在相同的WTE2衬底(D-WTE2)上存在缺陷时,情况大大变化。在张力下,相对于电子闭合壳AU-2二聚体,TE空位位点(V-TE)的电子开壳Au单体从WTE2衬底获得更多电荷,导致更强的EMSI。然而,当以电子开壳PDAU(PD-2)二聚体位于压缩的D-WTE2上时,可以将更多的电荷转移到两个原子中,距离下降,因此增加的库仑排斥相互作用将它们分开具有可调谐催化的稳定囊,用于共同氧化。本研究结果表明基材工程在稳定囊中的重要性,并在制造囊系统中提供有效的方法。

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    Zhengzhou Univ Sch Phys &

    Engn Zhengzhou 450001 Henan Peoples R China;

    Zhengzhou Univ Sch Phys &

    Engn Zhengzhou 450001 Henan Peoples R China;

    Beijing Computat Sci Res Ctr Beijing 100193 Peoples R China;

    Beijing Computat Sci Res Ctr Beijing 100193 Peoples R China;

    Zhengzhou Univ Sch Phys &

    Engn Zhengzhou 450001 Henan Peoples R China;

    Zhengzhou Univ Sch Phys &

    Engn Zhengzhou 450001 Henan Peoples R China;

    Zhengzhou Univ Sch Phys &

    Engn Zhengzhou 450001 Henan Peoples R China;

    Ningbo Univ Dept Phys Ningbo 315211 Zhejiang Peoples R China;

    Univ Hong Kong Dept Chem Zhejiang Inst Res &

    Innovat Hong Kong Peoples R China;

    Zhengzhou Univ Sch Phys &

    Engn Zhengzhou 450001 Henan Peoples R China;

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  • 正文语种 eng
  • 中图分类 工程材料学 ;
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