论文标题
在单原子级别揭示3维核壳界面结构
Revealing 3-dimensional core-shell interface structures at the single-atom level
论文作者
论文摘要
具有核心壳体系结构的纳米材料是应变工程材料的突出例子,可以通过微调界面处的失配应变来设计材料特性。在这里,我们通过原子电子层析成像阐明了单原子水平的PD@PT核壳纳米颗粒的完整3D原子结构。获得了核壳纳米颗粒的完整3D位移场和应变谱,这揭示了表面与界面应变之间的直接相关性。它还显示了全纳米颗粒和局部原子键的明显泊松作用。菌株分布显示出强大依赖性各向异性,其性质通过分子静态模拟进一步证实。从观察到的表面菌株中,预测表面氧还原反应活性。这些发现使人们对应变式核心壳系统中的结构特性关系有深入的了解,这可以为直接控制所得催化特性铺平一个新方法。
Nanomaterials with core-shell architectures are prominent examples of strain-engineered materials, where material properties can be designed by fine-tuning the misfit strain at the interface. Here, we elucidate the full 3D atomic structure of Pd@Pt core-shell nanoparticles at the single-atom level via atomic electron tomography. Full 3D displacement fields and strain profiles of core-shell nanoparticles were obtained, which revealed a direct correlation between the surface and interface strain. It also showed clear Poisson effects at the scale of the full nanoparticle as well as the local atomic bonds. The strain distributions show a strong shape-dependent anisotropy, whose nature was further corroborated by molecular statics simulations. From the observed surface strains, the surface oxygen reduction reaction activities were predicted. These findings give a deep understanding of structure-property relationships in strain-engineerable core-shell systems, which could pave a new way toward direct control over the resulting catalytic properties.