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Digital Image Analysis for Chemical Phase Identification and Particle Size Determination

机译:用于化学相鉴定和粒度测定的数字图像分析

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A methodology employing digital image analysis for chemical phase identification and particle size determination is presented. The phase of unknown iron-oxide based particulate sample was identified by analyzing its transmission electron microscope diffraction patterns and diffraction contrast images using ImageJ pattern recognition software. A standard diffraction pattern with known crystallographic spacing and a standard diffraction contrast image with known fringe spacing were used to calibrate the sample’s diffraction patterns and diffraction contrast images, respectively. The phase of unknown sample was identified as iron (III) oxide with an average particle size of 8.9 nm computed from digitized binary images through thresholding process. The particles size distribution closely resembled Poisson cumulative distribution function with 61% of the particles having diameters between 1-10 nm.
机译:提出了一种采用数字图像分析进行化学相鉴定和粒度确定的方法。通过使用ImageJ模式识别软件分析其透射电子显微镜的衍射图和衍射对比图像,可以识别未知的氧化铁基颗粒样品的相。具有已知晶体学间距的标准衍射图和具有已知条纹间距的标准衍射对比图分别用于校准样品的衍射图和衍射对比图。通过阈值处理从数字化二进制图像计算出的未知样品的相被鉴定为平均粒径为8.9 nm的氧化铁(III)。粒径分布非常类似于泊松累积分布函数,其中61%的粒径在1-10 nm之间。

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