论文标题

探测原子分辨率下氧化物核心/壳纳米粒子系统的元稳定性

Probing the Meta-Stability of Oxide Core/Shell Nanoparticle Systems at Atomic Resolution

论文作者

Roldana, Manuel A., Mayence, Arnaud, López-Ortega, Alberto, Ishikawa, Ryo, Salafranca, Juan, Estrader, Marta, Salazar-Alvarez, German, Baró, M. Dolors, Nogués, Josep, Pennycook, Stephen J., Varelaa, Maria

论文摘要

混合纳米颗粒允许利用限制的相互作用,不同材料和界面效应之间的接近。但是,要利用其特性深入了解其(元)稳定性和界面特征至关重要。尤其是基于在还原条件下工作的功能性氧化物的纳米系统的情况,这可能会严重影响其性质。在这项工作中,通过高分辨率扫描扫描透射透射电子显微镜与电子能量 - 能量光谱法组合,研究了原位电子诱导的MN3O4对MNO的选择性降低至MNO。这种原位转换允许模仿Operando环境中的实际过程。使用几何相分析与粒子图像速度结合的多阶段图像分析可以直接监视MN3O4还原过程中结构,化学成分和应变弛豫之间的关系。对于Fe3O4/MN3O4核/壳的情况,转换在没有缺陷的情况下平稳发生。但是,对于逆MN3O4/FE3O4核心/壳构型,电子束诱导的转化发生在不同的阶段,包括氧化还原反应和空隙形成,然后通过形成缺陷而应变场松弛。这项研究强调了理解负责粒子组成变化以控制稳定性和最终宏观功能的局部动力学的相关性。

Hybrid nanoparticles allow exploiting the interplay of confinement, proximity between different materials and interfacial effects. However, to harness their properties an in-depth understanding of their (meta)stability and interfacial characteristics is crucial. This is especially the case of nanosystems based on functional oxides working under reducing conditions, which may severely impact their properties. In this work, the in-situ electron-induced selective reduction of Mn3O4 to MnO is studied in magnetic Fe3O4/Mn3O4 and Mn3O4/Fe3O4 core/shell nanoparticles by means of high-resolution scanning transmission electron microscopy combined with electron energy-loss spectroscopy. Such in-situ transformation allows mimicking the actual processes in operando environments. A multi-stage image analysis using geometric phase analysis combined with particle image velocity enables direct monitoring of the relationship between structure, chemical composition and strain relaxation during the Mn3O4 reduction. In the case of Fe3O4/Mn3O4 core/shell the transformation occurs smoothly without the formation of defects. However, for the inverse Mn3O4/Fe3O4 core/shell configuration the electron beam-induced transformation occurs in different stages that include redox reactions and void formation followed by strain field relaxation via formation of defects. This study highlights the relevance of understanding the local dynamics responsible for changes in the particle composition in order to control stability and, ultimately, macroscopic functionality.

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