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Controlled Formation of Metal@Al2O3 Yolk-Shell Nanostructures with Improved Thermal Stability

机译:具有控制的热稳定性的金属@ Al2O3卵黄壳结构的可控形成

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Yolk-shell structured nanomaterials have shown interesting potential in different areas due to their unique structural configurations. A successful construction of such a hybrid structure relies not only on the preparation of the core materials, but also on the capability to manipulate the outside wall. Typically, for Al2O3, it has been a tough issue in preparing it into a uniform nanoshell, making the use of Al2O3-based yolk-shell structures a challenging but long-awaited task. Here, in benefit of our success in the controlled formation of Al2O3 nanoshell, we demonstrated that yolk-shell structures with metal confined inside a hollow Al2O3 nanosphere could be successfully achieved. Different metals including Au, Pt, Pd have been demonstrated, forming a typical core@void@shell structure. We showed that the key parameters of the yolk-shell structure such as the shell thickness and the cavity size could be readily tuned. Due to the protection of a surrounding Al2O3 shell, the thermal stability of the interior metal nanoparticles could be substantially improved, resulting in promising performance for the catalytic CO oxidation as revealed by our preliminary test on Au@Al2O3.
机译:卵黄壳结构的纳米材料由于其独特的结构构型在不同领域显示出令人感兴趣的潜力。这种混合结构的成功构造不仅取决于芯材的制备,还取决于操纵外壁的能力。通常,对于Al2O3来说,将其制备成均匀的纳米壳一直是一个棘手的问题,这使得使用基于Al2O3的卵黄壳结构成为一项艰巨但期待已久的任务。在这里,受益于我们成功地控制了Al2O3纳米壳的形成,我们证明了可以成功实现将卵黄壳结构与金属限制在空心Al2O3纳米球内。已经证明了包括Au,Pt,Pd在内的不同金属,形成了典型的core @ void @ shell结构。我们表明蛋黄-壳结构的关键参数,如壳的厚度和腔的大小可以很容易地进行调整。由于保护了周围的Al2O3壳层,内部金属纳米颗粒的热稳定性可以得到显着改善,如我们在Au @ Al2O3上进行的初步测试所揭示的那样,可实现令人鼓舞的CO氧化性能。

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