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首页> 外文期刊>Micron: The international research and review journal for microscopy >Detection of secondary and backscattered electrons for 3D imaging with multi-detector method in VP/ESEM
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Detection of secondary and backscattered electrons for 3D imaging with multi-detector method in VP/ESEM

机译:VP / ESEM中多检测器方法的3D成像二次和背散射电子的检测

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Highlights?Problems of adaptation of the multi-detector method for 3D imaging are described.?Problems of 3D imaging of wet bio-medical samples are discussed.?The Pressure Limiting Aperture was used as the signal collector.?Mechanisms of the detectors operation have been illustrated with computer simulations.AbstractThe paper considers some major problems of adapting the multi-detector method for three-dimensional (3D) imaging of wet bio-medical samples in Variable Pressure/Environmental Scanning Electron Microscope (VP/ESEM). The described method pertains to “single-view techniques”, which to create the 3D surface model utilise a sequence of 2D SEM images captured from a single view point (along the electron beam axis) but illuminated from four directions. The basis of the method and requirements resulting from them are given for the detector systems of secondary (SE) and backscattered electrons (BSE), as well as designs of the systems which could work in variable conditions. The problems of SE detection with application of the Pressure Limiting Aperture (PLA) as the signal collector are discussed with respect to secondary electron backscattering by a gaseous environment. However, the authors’ attention is turned mainly to the directional BSE detection, realized in two ways. The high take off angle BSE were captured through PLA with use of the quadruple semiconductor detector placed inside the intermediate chamber, while BSE starting at lower angles were detected by the four-folded ionization device working in the sample chamber environment. The latter relied on a conversion of highly energetic BSE into low energetic SE generated on walls and a gaseous environment of the deep discharge gap oriented along the BSE velocity direction. The converted BSE signal was amplified in an ionising avalanche developed in the electric field arranged transversally to the gap. The detector system operation is illustrated with numerous computer simulations and examples of experiments and 3D images. The latter were conducted in a JSM 840 microscope with its combined detector-vacuum equipment which could extend capabilities of this high vacuum instrument toward elevated pressures (over 1kPa) and environmental conditions.]]>
机译:<![cdata [ 突出显示 适应3D成像的多检测器方法的调整问题。 湿生物医疗样本的3D成像问题讨论。 压力限制孔用作信号收集器。 探测器操作的机制已经illus使用计算机模拟。 抽象 本文考虑了一种适应多探测器方法,适应多探测器方法的三维(3D)成像在可变压力/环境扫描电子显微镜(VP / ESEM)。所描述的方法涉及“单视图技术”,其创建3D表面模型利用从单个视点(沿电子束轴)捕获的2D SEM图像的序列,而是从四个方向照射。由它们产生的方法和要求的基础给出了次级(SE)和背散射电子(BSE)的检测器系统,以及可以在可变条件下工作的系统的设计。通过气态环境对二次电子反向散射讨论了作为信号收集器的压力限制孔径(PLA)的SE检测的问题。然而,作者的注意力主要是以定向BSE检测转向,以两种方式实现。通过PLA捕获高取截面角BSE,使用放置在中间室内的四端半导体检测器,同时通过在样品室环境中工作的四折叠电离装置检测以较低角度开始的BSE。后者依赖于高能量BSE转换为在墙壁上产生的低能量SE和沿着BSE速度方向定向的深排出间隙的气态环境。转换的BSE信号在横向于间隙横向布置的电场中开发的电离雪崩中放大。检测器系统操作用许多计算机模拟和实验和3D图像的示例说明。后者在JSM 840显微镜中进行,其组合检测器真空设备,可以将该高真空仪器的能力延长升高的压力(超过1kPa)和环境条件。 ]]>

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