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Development of in-line furnace for in situ nanoscale resolution x-ray microscopy

机译:型纳米级分辨率X射线显微镜的线炉开发

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Full field transmission x-ray microscopy (TXM) is a newly developed x-ray imaging technique to provide quantitative and non-destructive 3D characterization of the complex microstructure of materials at nanometer resolution. A key missing component is an in situ apparatus enabling the imaging of the complex structural evolution of the materials and to correlate the structural change with a material's functionality under real operating conditions. This work describes the design of an environmental cell which satisfies the requirements for in situ TXM studies. The limited space within the TXM presents a spatial constraint which prohibits the use of conventional heaters, as well as requiring consideration in designing for safe and controlled operation of the system and alignment of the cell with the beam. A gravity drip-fed water cooling jacket was installed in place around the heating module to maintain critical components of the microscope at safe operating temperatures. A motion control system consisting of pulse width modulated DC motor driven XYZ translation stages was developed to facilitate fine alignment of the cell. Temperature of the sample can be controlled remotely and accurately through a controller to temperatures as high as 1200 K. Heating zone measurement was carried out and shows a 500 x 500 x 500 μm3 homogeneous zone volume for sample area, which is a critical parameter to ensure accurate observation of structural evolution at nanometer scale with a sample in size of tens of microns. Application on Ni particles for in situ oxidation experiment and dehydrogenation of aluminum hydride is also discussed.
机译:全场传输X射线显微镜(TXM)是一种新开发的X射线成像技术,可提供纳米分辨率的材料复杂微观结构的定量和非破坏性3D表征。关键缺失组件是一种原位设备,其能够在实际操作条件下将结构变化与材料的功能相关联的成像。这项工作描述了满足原位TXM研究要求的环境细胞的设计。 TXM内的有限空间具有空间约束,该限制禁止使用传统加热器,以及在设计系统的安全和控制操作和细胞与光束的对准时考虑。围绕加热模块安装重力滴注水冷却套,以保持显微镜的关键部件在安全的操作温度下。开发了一种由脉冲宽度调制DC电动机驱动的XYZ翻译级组成的运动控制系统以便于细胞的精细对准。可以通过控制器远程且精确地控制样品的温度,以高达1200k的温度。进行加热区测量并显示500×500×500μm3的样本区域,这是一种确保的关键参数准确地观察纳米刻度的结构演变,样品数量的数十微米。还讨论了对Ni颗粒的应用,用于原位氧化实验和氢化铝脱氢。

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