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首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Resolving Atomic Ordering Differences in Group 11 Nanosized Metals and Binary Alloy Catalysts by Resonant High-Energy X-ray Diffraction and Computer Simulations
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Resolving Atomic Ordering Differences in Group 11 Nanosized Metals and Binary Alloy Catalysts by Resonant High-Energy X-ray Diffraction and Computer Simulations

机译:共振高能X射线衍射和计算机模拟解决11族纳米金属和二元合金催化剂中的原子有序差异

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Resonant high-energy X-ray diffraction coupled to atomic pair distribution function analysis and computer simulations is used to study the atomic-scale structure of group 11 nanosized metals and binary alloy catalysts. We find that nanosized Cu is quite disordered structurally whereas nanosized Ag and especially Au exhibit a very good degree of crystallinity. We resolve Cu—Cu and Ag~Ag atomic correlations from Au-involving ones in Au-Cu and Au—Ag nanoalloys and show that depending on the synthetic route group 11 binary alloys may adopt structural states that obey or markedly violate Vegard's law. In the latter case, Cu and Ag atoms undergo substantial size expansion and contraction by as much as 0.3 and 0.03 A, respectively, while heavier Au atoms remain practically intact. The size change of Cu and Ag atoms does not follow Pauling's rule of electronegativity predicting charge flow toward the more electronegative Au but occurs in a way such that Cu/Au and Ag/Au atomic size ratios in the nanoalloys become closer to one. Atomic size adjusting and the concurrent charge redistribution result in a synergistic effect of oxygen inactive Au and oxygen very active Cu and Ag leading to nanoalloys with very good activity for low-temperature oxidation of CO.
机译:共振高能X射线衍射与原子对分布函数分析和计算机模拟相结合,用于研究11族纳米金属和二元合金催化剂的原子尺度结构。我们发现,纳米尺寸的铜在结构上相当无序,而纳米尺寸的银,尤其是金则表现出非常好的结晶度。我们从Au-Cu和Au-Ag纳米合金中涉及Au的原子中解析出Cu-Cu和Ag〜Ag原子的相关性,并表明根据合成路线组,二元合金11可能会遵循或明显违反Vegard定律的结构态。在后一种情况下,Cu和Ag原子分别发生了多达0.3和0.03 A的实质尺寸膨胀和收缩,而较重的Au原子实际上保持完整。 Cu和Ag原子的尺寸变化不遵循Pauling的电负性规则,该规则预测电荷流向更具负电性的Au,而是以纳米合金中Cu / Au和Ag / Au原子尺寸比接近于一个的方式发生。原子尺寸的调整和同时发生的电荷再分配导致了氧非活性Au和氧非常活泼的Cu和Ag的协同作用,从而导致纳米合金对CO的低温氧化具有很好的活性。

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