Zurkowski Claire C, Yang Jing, Miozzi Francesca, Vitale Suzy, O 'Bannon Earl F, Jenei Zsolt, Chariton Stella, Prakapenka Vitali, Fei Yingwei
Earth and Planets Laboratory, Carnegie Institution for Science, 5241 Broad Branch Road, NW, Washington, DC, 20015, USA.
Lawrence Livermore National Laboratory, 7000 East Ave, Livermore, CA, 94600, USA.
Sci Rep. 2024 May 18;14(1):11412. doi: 10.1038/s41598-024-61861-2.
With the advent of toroidal and double-stage diamond anvil cells (DACs), pressures between 4 and 10 Mbar can be achieved under static compression, however, the ability to explore diverse sample assemblies is limited on these micron-scale anvils. Adapting the toroidal DAC to support larger sample volumes offers expanded capabilities in physics, chemistry, and planetary science: including, characterizing materials in soft pressure media to multi-megabar pressures, synthesizing novel phases, and probing planetary assemblages at the interior pressures and temperatures of super-Earths and sub-Neptunes. Here we have continued the exploration of larger toroidal DAC profiles by iteratively testing various torus and shoulder depths with central culet diameters in the 30-50 µm range. We present a 30 µm culet profile that reached a maximum pressure of 414(1) GPa based on a Pt scale. The 300 K equations of state fit to our P-V data collected on gold and rhenium are compatible with extrapolated hydrostatic equations of state within 1% up to 4 Mbar. This work validates the performance of these large-culet toroidal anvils to > 4 Mbar and provides a promising foundation to develop toroidal DACs for diverse sample loading and laser heating.
随着环形和双级金刚石对顶砧(DAC)的出现,在静态压缩下可实现4至10兆巴的压力,然而,在这些微米级顶砧上探索各种样品组件的能力有限。使环形DAC能够支持更大的样品体积,在物理、化学和行星科学方面提供了扩展的能力:包括在软压力介质中对材料进行多兆巴压力下的表征、合成新相,以及在超级地球和海王星以下行星的内部压力和温度下探测行星组合。在这里,我们通过迭代测试中心尖底直径在30-50微米范围内的各种圆环和肩部深度,继续探索更大的环形DAC轮廓。我们展示了一种30微米尖底轮廓,基于铂标度达到了414(1)吉帕的最大压力。根据我们在金和铼上收集的P-V数据拟合的300K状态方程,在高达4兆巴的压力下与外推的静水状态方程在1%的范围内兼容。这项工作验证了这些大尖底环形顶砧在超过4兆巴压力下的性能,并为开发用于各种样品加载和激光加热的环形DAC提供了有前景的基础。