论文标题
在金色微晶中退火聚焦离子束损伤:原位布拉格相干X射线衍射成像研究
Annealing of focused ion beam damage in gold microcrystals: An in situ Bragg coherent X-ray diffraction imaging study
论文作者
论文摘要
聚焦离子束(FIB)技术通常用于在微观和纳米级上进行机加工,分析和图像材料。但是,FIB通过产生引起晶格失真的缺陷来修改样品的完整性。已经开发了减少纤维引起的菌株的方法,但是需要评估这些方案的有效性。在这里,我们使用非破坏性的Bragg相干X射线衍射成像来研究纤维矿物金微晶的原位退火。在单个退火循环中,我们同时测量了两个不同晶体的两个非共线反射,这表明在热退火过程中可靠地跟踪多个Bragg峰的位置的能力。每个晶体的热晶格膨胀用于计算局部温度。这与热电偶读数进行了比较,这些读数被证明受热阻力的影响。为了评估退火过程,我们通过考虑方面的进化,位移场的互相关图和二进制形态以及平均应变图来分析每种反射。晶体的应变和形态随温度的升高而演变,这很可能是由于金在〜280°C以下的金中的扩散以及在〜280°C以上的金的自扩散引起的。大多数纤维诱导的菌株由380-410 \度C去除,具体取决于考虑哪种反射。我们的观察结果强调了测量多种反射以明确解释材料行为的重要性。
Focused ion beam (FIB) techniques are commonly used to machine, analyse and image materials at the micro- and nanoscale. However, FIB modifies the integrity of the sample by creating defects that cause lattice distortions. Methods have been developed to reduce FIB-induced strain, however these protocols need to be evaluated for their effectiveness. Here we use non-destructive Bragg coherent X-ray diffraction imaging to study the in situ annealing of FIB-milled gold microcrystals. We simultaneously measure two non-collinear reflections for two different crystals during a single annealing cycle, demonstrating the ability to reliably track the location of multiple Bragg peaks during thermal annealing. The thermal lattice expansion of each crystal is used to calculate the local temperature. This is compared to thermocouple readings, which are shown to be substantially affected by thermal resistance. To evaluate the annealing process, we analyse each reflection by considering facet area evolution, cross-correlation maps of displacement field and binarised morphology, and average strain plots. The crystal's strain and morphology evolve with increasing temperature, which is likely to be caused by the diffusion of gallium in gold below ~280°C and the self-diffusion of gold above ~280°C. The majority of FIB-induced strains are removed by 380-410\degree C, depending on which reflection is being considered. Our observations highlight the importance of measuring multiple reflections to unambiguously interpret material behaviour.