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Maximum Noble-Metal Efficiency in Catalytic Materials: Atomically Dispersed Surface Platinum

机译:催化材料的最大贵金属效率:原子分散表面铂

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摘要

Platinum is the most versatile element in catalysis, but it is rare and its high price limits large-scale applications, for example in fuel-cell technology. Still, conventional catalysts use only a small fraction of the Pt content, that is, those atoms located at the catalyst's surface. To maximize the noble-metal efficiency, the precious metal should be atomically dispersed and exclusively located within the outermost surface layer of the material. Such atomically dispersed Pt surface species can indeed be prepared with exceptionally high stability. Using DFT calculations we identify a specific structural element, a ceria "nanopocket", which binds Pt~(2+) so strongly that it withstands sintering and bulk diffusion. On model catalysts we experimentally confirm the theoretically predicted stability, and on real Pt-CeO2 nanocomposites showing high Pt efficiency in fuel-cell catalysis we also identify these anchoring sites.
机译:铂是催化中用途最广泛的元素,但它很少见,其高价格限制了大规模应用,例如燃料电池技术。仍然,常规催化剂仅使用Pt含量的一小部分,即位于催化剂表面的那些原子。为了使贵金属效率最大化,贵金属应原子分散并排在材料的最外层。这样的原子分散的Pt表面物质的确可以以极高的稳定性制备。使用DFT计算,我们确定了一种特定的结构元素,即二氧化铈“纳米口袋”,它与Pt〜(2+)的结合非常牢固,可以承受烧结和体积扩散。在模型催化剂上,我们通过实验证实了理论上预测的稳定性,在真实的Pt-CeO2纳米复合材料上,在燃料电池催化中显示出较高的Pt效率,我们还确定了这些锚固位点。

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