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用于高压协同先进技术(HPCAT)进行高温高压实验的一氧化碳激光加热系统。

A CO laser heating system for high pressure-temperature experiments at HPCAT.

作者信息

Smith Dean, Smith Jesse S, Childs Christian, Rod Eric, Hrubiak Rostislav, Shen Guoyin, Salamat Ashkan

机构信息

Department of Physics and Astronomy and HiPSEC, University of Nevada Las Vegas, Las Vegas, Nevada 89154, USA.

High Pressure Collaborative Access Team, Geophysical Laboratory, Carnegie Institution of Washington, Argonne, Illinois 60439, USA.

出版信息

Rev Sci Instrum. 2018 Aug;89(8):083901. doi: 10.1063/1.5040508.

Abstract

We present a CO laser heating setup for synchrotron x-ray diffraction inside a diamond anvil cell, situated at HPCAT (Sector 16, Advanced Photon Source, Argonne National Lab, Illinois, USA), which is modular and portable between the HPCAT experiment hutches. The system allows direct laser heating of wide bandgap insulating materials to thousands of degrees at static high pressures up to the Mbar regime. Alignment of the focused CO laser spot is performed using a mid-infrared microscope, which addressed past difficulties with aligning the invisible radiation. The implementation of the mid-infrared microscope alongside a mirror pinhole spatial filter system allows precise alignment of the heating laser spot and optical pyrometry measurement location to the x-ray probe. A comparatively large heating spot (∼50 m) relative to the x-ray beam (<10 m) reduces the risk of temperature gradients across the probed area. Each component of the heating system and its diagnostics have been designed with portability in mind and compatibility with the various experimental hutches at the HPCAT beamlines. We present measurements on ZrO at 5.5 GPa which demonstrate the improved room-temperature diffraction data quality afforded by annealing with the CO laser. We also present measurements at 5.5 GPa up to 2800 K in which we do not observe the postulated fluorite ZrO structure, in agreement with recent findings.

摘要

我们展示了一种用于金刚石对顶砧室内同步加速器X射线衍射的CO激光加热装置,该装置位于美国伊利诺伊州阿贡国家实验室高级光子源16号扇区的高压协同行动中心(HPCAT),它是模块化的,可在HPCAT的实验小室之间移动。该系统可在高达兆巴量级的静态高压下,将宽带隙绝缘材料直接激光加热到数千度。使用中红外显微镜对聚焦的CO激光光斑进行对准,解决了过去对准不可见辐射的困难。中红外显微镜与镜针孔空间滤波系统的结合使用,可将加热激光光斑和光学高温测量位置精确对准到X射线探测器。相对于X射线束(<10μm)而言,较大的加热光斑(约50μm)降低了被探测区域出现温度梯度的风险。加热系统的每个组件及其诊断设备在设计时都考虑到了便携性以及与HPCAT光束线各实验小室的兼容性。我们展示了在5.5 GPa压力下对ZrO进行的测量,结果表明用CO激光退火可提高室温衍射数据质量。我们还展示了在5.5 GPa压力下高达2800 K的测量结果,其中我们未观察到假定的萤石ZrO结构,这与最近的研究结果一致。

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