Department of Physics and Astronomy, University of Leicester, Leicester LE1 7RH, UK.
J Phys Condens Matter. 2010 Sep 29;22(38):385301. doi: 10.1088/0953-8984/22/38/385301. Epub 2010 Sep 3.
Core/shell Fe/Cu and Fe/Au nanoparticles were prepared directly by deposition from the gas phase. A detailed study of the atomic structure in both the cores and shells of the nanoparticles was undertaken by means of extended absorption fine structure (EXAFS) measurements. For Fe/Cu nanoparticles, a Cu shell ∼ 20 monolayers thick appears similar in structure to bulk Cu and is sufficient to cause the structure in the Fe core to switch from body centred cubic (bcc; as in bulk Fe) to face centred cubic. This is not the case for thinner Cu shells, 1-2 monolayers in thickness, in which there is a considerable contraction in nearest-neighbour interatomic distance as the shell structure changes to bcc. In Fe/Au nanoparticles, the crystal structure in the Fe core remains bcc for all Au thicknesses although there is some stretching of the lattice. In thin Au shells ∼ 2 monolayers thick, there is strong contraction in interatomic distances. There does not appear to be significant alloying at the Fe/Au interface.
核壳结构的 Fe/Cu 和 Fe/Au 纳米颗粒是通过气相沉积直接制备的。通过扩展吸收精细结构(EXAFS)测量对纳米颗粒的核和壳中的原子结构进行了详细研究。对于 Fe/Cu 纳米颗粒,约 20 单层厚的 Cu 壳在结构上类似于体心立方(bcc;如块状 Fe 中),足以使 Fe 核中的结构从体心立方(bcc)转变为面心立方。对于厚度为 1-2 单层的更薄的 Cu 壳,情况并非如此,随着壳结构转变为 bcc,最近邻原子间距离会有相当大的收缩。在 Fe/Au 纳米颗粒中,尽管晶格有一定的拉伸,但 Fe 核中的晶体结构仍保持 bcc。在厚度约为 2 单层的薄 Au 壳中,原子间距离强烈收缩。在 Fe/Au 界面处似乎没有明显的合金化。