加速电压
透射电子显微镜
阴极发光
相(物质)
电子
电子能量损失谱
材料科学
八面体
微晶
电子束处理
原子物理学
结晶学
阴极射线
分子物理学
化学
纳米技术
晶体结构
物理
光电子学
量子力学
发光
有机化学
作者
Ute Golla‐Schindler,G. Benner,Alexander Orchowski,Ute Kaiser
标识
DOI:10.1017/s1431927614000464
摘要
Abstract It is demonstrated that energy-filtered transmission electron microscope enables following of in situ changes of the Ca-L 2,3 edge which can originate from variations in both local symmetry and bond lengths. Low accelerating voltages of 20 and 40 kV slow down radiation damage effects and enable study of the start and finish of phase transformations. We observed electron beam-induced phase transformation of single crystalline calcite (CaCO 3 ) to polycrystalline calcium oxide (CaO) which occurs in different stages. The coordination of Ca in calcite is close to an octahedral one streched along the <111> direction. Changes during phase transformation to an octahedral coordination of Ca in CaO go along with a bond length increase by 5 pm, where oxygen is preserved as a binding partner. Electron loss near-edge structure of the Ca-L 2,3 edge show four separated peaks, which all shift toward lower energies during phase transformation at the same time the energy level splitting increases. We suggest that these changes can be mainly addressed to the change of the bond length on the order of picometers. An important pre-condition for such studies is stability of the energy drift in the range of meV over at least 1 h, which is achieved with the sub-Ångström low-voltage transmission electron microscope I prototype microscope.
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