原位
材料科学
纳米颗粒
衍射
芯(光纤)
纳米技术
壳体(结构)
X射线晶体学
结晶学
光学
化学
物理
复合材料
有机化学
作者
Corentin Chatelier,Clément Atlan,Maxime Dupraz,Steven Leake,Ni Li,Tobias U. Schülli,Mor Levi,Eugen Rabkin,Luc Favre,S. Labat,J. Eymery,Marie‐Ingrid Richard
出处
期刊:ACS Nano
[American Chemical Society]
日期:2024-05-16
卷期号:18 (21): 13517-13527
被引量:3
标识
DOI:10.1021/acsnano.3c11534
摘要
Solid-state reactions play a key role in materials science. The evolution of the structure of a single 350 nm Ni3Fe nanoparticle, i.e., its morphology (facets) as well as its deformation field, has been followed by applying multireflection Bragg coherent diffraction imaging. Through this approach, we unveiled a demixing process that occurs at high temperatures (600 °C) under an Ar atmosphere. This process leads to the gradual emergence of a highly strained core–shell structure, distinguished by two distinct lattice parameters with a difference of 0.4%. Concurrently, this transformation causes the facets to vanish, ultimately yielding a rounded core–shell nanoparticle. This final structure comprises a Ni3Fe core surrounded by a 40 nm Ni-rich outer shell due to preferential iron oxidation. Providing in situ 3D imaging of the lattice parameters at the nanometer scale while varying the temperature, this study─with the support of atomistic simulations─not only showcases the power of in situ multireflection BCDI but also provides valuable insights into the mechanisms at work during a solid-state reaction characterized by a core–shell transition.
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