论文标题

带有4D茎纳米孔电子衍射的Core@壳电催化剂的晶格应变测量

Lattice strain measurement of core@shell electrocatalysts with 4D-STEM nanobeam electron diffraction

论文作者

Mukherjee, Debangshu, Gamler, Jocelyn T. L., Skrabalak, Sara E., Unocic, Raymond R.

论文摘要

应变工程可以直接修改原子键,目前是旨在改善电催化活性的活跃领域。然而,直接测量单个催化剂纳米颗粒的晶格应变具有挑战性,尤其是在单个单位细胞的尺度上。在这里,我们使用常规像校正的扫描透射电子显微镜(STEM)和最近开发的4D-STEM纳米氨基 - 纳米氨基 - 纳米氨基 - 纳米氨基 - 纳米氨基机电子衍射中的纳米式电催化剂进行定量绘制含量中存在的应变。我们证明,4D-STEM与数据预处理相结合,可以在不影响扫描畸变的情况下以子量表的精度进行定量的晶格应变映射。当与多元曲线分辨率结合使用时,4D-STEM使我们能够将纳米芯芯与外壳区分开,并量化单位小区大小,这是距离核心壳界面距离的函数。我们的结果表明,与被像差校正的STEM成像相比,4D-STEM在催化剂材料的应变计量学方面具有显着的精度和准确性优势,并且有益于提取有关催化剂纳米颗粒菌株演化的信息。

Strain engineering enables the direct modification of the atomic bonding and is currently an active area of research aimed at improving the electrocatalytic activity. However, directly measuring the lattice strain of individual catalyst nanoparticles is challenging, especially at the scale of a single unit cell. Here, we quantitatively map the strain present in rhodium@platinum (core@shell) nanocube electrocatalysts using conventional aberration-corrected scanning transmission electron microscopy (STEM) and the recently developed technique of 4D-STEM nanobeam electron diffraction. We demonstrate that 4D-STEM combined with data pre-conditioning allows for quantitative lattice strain mapping with sub-picometer precision without the influence of scan distortions. When combined with multivariate curve resolution, 4D-STEM allows us to distinguish the nanocube core from the shell and to quantify the unit cell size as a function of distance from the core-shell interface. Our results demonstrate that 4D-STEM has significant precision and accuracy advantages in strain metrology of catalyst materials compared to aberration-corrected STEM imaging and is beneficial for extracting information about the evolution of strain in catalyst nanoparticles.

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