Wang Z C, Zhong X Y, Jin L, Chen X F, Moritomo Y, Mayer J
National Center for Electron Microscopy in Beijing, Key Laboratory of Advanced Materials (MOE), The State Key Laboratory of New Ceramics and Fine Processing, School of Materials Science and Engineering, Tsinghua University, Beijing 100084, China.
National Center for Electron Microscopy in Beijing, Key Laboratory of Advanced Materials (MOE), The State Key Laboratory of New Ceramics and Fine Processing, School of Materials Science and Engineering, Tsinghua University, Beijing 100084, China.
Ultramicroscopy. 2017 May;176:212-217. doi: 10.1016/j.ultramic.2016.12.024. Epub 2016 Dec 30.
Electron energy-loss magnetic chiral dichroism (EMCD) spectroscopy, which is similar to the well-established X-ray magnetic circular dichroism spectroscopy (XMCD), can determine the quantitative magnetic parameters of materials with high spatial resolution. One of the major obstacles in quantitative analysis using the EMCD technique is the relatively poor signal-to-noise ratio (SNR), compared to XMCD. Here, in the example of a double perovskite SrFeMoO, we predicted the optimal dynamical diffraction conditions such as sample thickness, crystallographic orientation and detection aperture position by theoretical simulations. By using the optimized conditions, we showed that the SNR of experimental EMCD spectra can be significantly improved and the error of quantitative magnetic parameter determined by EMCD technique can be remarkably lowered. Our results demonstrate that, with enhanced SNR, the EMCD technique can be a unique tool to understand the structure-property relationship of magnetic materials particularly in the high-density magnetic recording and spintronic devices by quantitatively determining magnetic structure and properties at the nanometer scale.
电子能量损失磁圆二色光谱(EMCD)与成熟的X射线磁圆二色光谱(XMCD)类似,能够以高空间分辨率确定材料的定量磁参数。与XMCD相比,使用EMCD技术进行定量分析的一个主要障碍是信噪比(SNR)相对较差。在此,以双钙钛矿SrFeMoO为例,我们通过理论模拟预测了最佳动态衍射条件,如样品厚度、晶体取向和检测孔径位置。通过使用优化条件,我们表明实验EMCD光谱的SNR可以显著提高,并且由EMCD技术确定的定量磁参数的误差可以显著降低。我们的结果表明,随着SNR的提高,EMCD技术可以成为一种独特的工具,通过在纳米尺度上定量确定磁结构和性质,来理解磁性材料的结构-性能关系,特别是在高密度磁记录和自旋电子器件中。