纳米棒
材料科学
纳米结构
扫描透射电子显微镜
纳米尺度
氧气
透射电子显微镜
光谱学
化学计量学
氧化物
分析化学(期刊)
纳米技术
化学
物理
物理化学
冶金
有机化学
量子力学
色谱法
作者
Miguel López‐Haro,Isabel Gómez‐Recio,Pan Hu,Juan J. Delgado,Xiaowei Chen,M.A. Cauqui,José A. Pérez-Omil,M. Luisa Ruiz‐González,María Hernando,M. Parras,José M. González‐Calbet,José J. Calvino
标识
DOI:10.1093/micmic/ozad037
摘要
The oxygen stoichiometry of hollandite, KxMnO2-δ, nanorods has been accurately determined from a quantitative analysis of scanning-transmission electron microscopy (STEM) X-Ray Energy Dispersive Spectroscopy (XEDS) experiments carried out in chrono-spectroscopy mode. A methodology combining 3D reconstructions of high-angle annular dark field electron tomography experiments, using compressed-sensing algorithms, and quantification through the so-called ζ-factors method of XEDS spectra recorded on a high-sensitivity detector has been devised to determine the time evolution of the oxygen content of nanostructures of electron-beam sensitive oxides. Kinetic modeling of O-stoichiometry data provided K0.13MnO1.98 as overall composition for nanorods of the hollandite. The quantitative agreement, within a 1% mol error, observed with results obtained by macroscopic techniques (temperature-programmed reduction and neutron diffraction) validate the proposed methodology for the quantitative analysis, at the nanoscale, of light elements, as it is the case of oxygen, in the presence of heavy ones (K, Mn) in the highly compromised case of nanostructured materials which are prone to electron-beam reduction. Moreover, quantitative comparison of oxygen evolution data measured at macroscopic and nanoscopic levels allowed us to rationalize beam damage effects in structural terms and clarify the exact nature of the different steps involved in the reduction of these oxides with hydrogen.
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