金刚石砧槽平行实验的实现及其在高压高温条件下水-矿物相互作用研究中的应用。

Runze Jiang, Chun-Kai Lan, Jinxue Du, Renbiao Tao
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引用次数: 2

摘要

平行实验通常用于同时比较不同的化学体系和条件。在高压实验科学领域,由于产生高压条件的反应室尺寸非常有限,难以实现平行实验,特别是金刚石砧细胞(金刚石砧细胞)。可以在衬垫上钻多个孔,而不是一个孔(即多孔衬垫技术),从而在DAC中实现并行实验。在本研究中,我们采用统计方法对多孔垫片技术进行了一系列系统校准实验。在Python编码程序的帮助下,用激光钻孔仪在垫片上对称地钻出多个直径为100 μ m的孔(两个或三个或四个)。在室温下的所有校准实验中,在平均压力低于10 GPa时,衬垫各孔之间的压力偏差都被限制在0.2 GPa以内。进一步考察了垫片材料、孔数、预压痕垫片厚度和温度对垫片不同孔间压力偏差的影响。最后,我们将多孔垫片技术应用于DAC实验,比较了相同压力和温度条件下不同化学环境下方解石的溶解度。实验结果表明,在高p (<10 GPa)和高t(<700°C)条件下,多孔垫片技术可以有效地同时实现多个并行实验,可以广泛应用于水-矿物相互作用的研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Realization of parallel experiments in a diamond anvil cell and their application to water-mineral interactions at high-pressure and high-temperature conditions.
Parallel experiments are normally used to compare different chemical systems and conditions simultaneously. In the field of high-pressure experimental science, parallel experiments are hard to realize due to very limited reaction chamber size for the generation of high-pressure conditions, especially in diamond anvil cells (DACs). Multiple holes, instead of a single hole, can be drilled into a gasket (i.e., multihole gasket technique) to realize parallel experiments in a DAC. In this study, we conducted a series of systematic calibration experiments on multihole gasket techniques using statistical methods. Multiple (two or three or four) holes 100 µm in diameter were symmetrically drilled into a gasket by a laser drilling instrument with the help of a coded Python program. The pressure deviations among different holes in a gasket at average pressures below 10 GPa are constrained to less than 0.2 GPa in all calibration experiments at room temperature. We further checked the influences of the gasket material, hole number, pre-indented gasket thickness, and temperature on the pressure deviations among different holes in a gasket. Finally, we applied the multihole gasket technique in a DAC experiment and compared the solubility of calcite in different chemical environments at the same pressure and temperature conditions. The experimental results showed that the multihole gasket technique could be widely applied to study water-mineral interactions at high-P (<10 GPa) and high-T (<700 °C) conditions because multiple parallel experiments can be efficiently realized simultaneously.
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