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Nanoalloying in real time. A high resolution STEM and computer simulation study

机译:实时Nanoalloying。和计算机模拟研究

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Bimetallic nanoparticles constitute a promising type of catalysts, mainly because their physical and chemical properties may be tuned by varying their chemical composition, atomic ordering, and size. Today, the design of novel nanocatalysts is possible through a combination of virtual lab simulations on massive parallel computing and modern electron microscopy with picometre resolution on one hand, and the capability of chemical analysis at the atomic scale on the other. in this work we show how the combination of theoretical calculations and characterization can solve some of the paradoxes reported about nanocatalysts: Au-Pd bimetallic nanoparticles. in particular, we demonstrate the key role played by adsorbates, such as carbon monoxide (CO), on the structure of nanoalloys. Our results imply that surface condition of nanoparticles during synthesis is a parameter of paramount importance.
机译:双金属纳米颗粒构成承诺类型的催化剂,主要是因为他们的身体和化学性质可能通过改变他们的化学成分、原子排序和大小。可能通过结合虚拟实验室在大规模并行计算和模拟现代电子显微镜picometre决议一方面的能力化学分析在原子尺度其他。理论计算和特征可以解决一些矛盾报道呢nanocatalysts: Au-Pd双金属纳米颗粒。特别地,我们演示所发挥的关键作用被吸附物,如一氧化碳(CO),在nanoalloys结构。纳米粒子的表面条件合成是至关重要的一个参数。

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