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Investigating lattice strain impact on the alloyed surface of small Au@PdPt core-shell nanoparticles

机译:调查晶格应变对合金的影响表面的小Au@PdPt核壳纳米粒子

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We investigated lattice strain on alloyed surfaces using similar to 10 nm core-shell nanoparticles with controlled size, shape, and composition. We developed a wet-chemistry method for synthesizing small octahedral PdPt alloy nanoparticles and Au@PdPt core-shell nanoparticles with Pd-Pt alloy shells and Au cores. Upon introduction of the Au core, the size and shape of the overall nanostructure and the composition of the alloyed PdPt were maintained, enabling the use of the electrooxidation of formic acid as a probe to compare the surface structures with different lattice strain. We have found that the structure of the alloyed surface is indeed impacted by the lattice strain generated by the Au core. To further reveal the impact of lattice strain, we fine-tuned the shell thickness. Then, we used synchrotron-based X-ray diffraction to investigate the degree of lattice strain and compared the observations with the results of the formic acid electrooxidation, suggesting that there is an optimal intermediate shell thickness for high catalytic activity.
机译:我们研究了合金表面晶格应变使用类似于10纳米核壳纳米粒子与控制大小,形状,和组成。开发了一种湿化学方法合成小八面体所合金纳米粒子Au@PdPt Pd-Pt合金,具有核壳结构的纳米颗粒非盟的核心和贝壳。核心,整体的大小和形状纳米结构和合金的成分所维护,支持的使用摘要甲酸作为探针比较不同的表面结构晶格应变。合金表面的确实的影响产生的晶格应变非盟的核心。进一步揭示晶格应变的影响,我们调整壳厚度。synchrotron-based x射线衍射,调查程度的晶格应变和比较了观察的结果甲酸电氧化,这表明有一个最优中间壳厚度高催化活性。

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