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硼掺杂金刚石的合成及其在多砧高压装置中作为加热材料的应用。

Synthesis of boron-doped diamond and its application as a heating material in a multi-anvil high-pressure apparatus.

作者信息

Xie Longjian, Yoneda Akira, Yoshino Takashi, Yamazaki Daisuke, Tsujino Noriyoshi, Higo Yuji, Tange Yoshinori, Irifune Tetsuo, Shimei Toru, Ito Eiji

机构信息

Institute for Planetary Materials, Okayama University, Misasa, Tottori 682-0193, Japan.

Japan Synchrotron Radiation Research Institute, 1-1-1 Kouto, Sayo, Hyogo 689-5198, Japan.

出版信息

Rev Sci Instrum. 2017 Sep;88(9):093904. doi: 10.1063/1.4993959.

Abstract

We developed methods to use synthesized boron-doped diamond (BDD) as a heater in a multi-anvil high-pressure apparatus. The synthesized BDD heater could stably generate an ultra-high temperature without the issues (anomalous melt, pressure drop, and instability of heating) arising from oxidation of boron into boron oxide and graphite-diamond conversion. We synthesized BDD blocks and tubes with boron contents of 0.5-3.0 wt. % from a mixture of graphite and amorphous boron at 15 GPa and 2000 °C. The electrical conductivity of BDD increased with increasing boron content. The stability of the heater and heating reproducibility were confirmed through repeated cycles of heating and cooling. Temperatures as high as ∼3700 °C were successfully generated at higher than 10 GPa using the BDD heater. The effect of the BDD heater on the pressure-generation efficiency was evaluated using MgO pressure scale by in situ X-ray diffraction study at the SPring-8 synchrotron. The pressure-generation efficiency was lower than that using a graphite-boron composite heater up to 1500 tons. The achievement of stable temperature generation above 3000 °C enables melting experiments of silicates and determination of some physical properties (such as viscosity) of silicate melts under the Earth's lower mantle conditions.

摘要

我们开发了在多砧高压装置中使用合成硼掺杂金刚石(BDD)作为加热器的方法。合成的BDD加热器能够稳定地产生超高温,而不会出现硼氧化成氧化硼以及石墨 - 金刚石转化所引发的问题(异常熔化、压力降和加热不稳定性)。我们在15 GPa和2000 °C条件下,由石墨和无定形硼的混合物合成了硼含量为0.5 - 3.0 wt.%的BDD块体和管子。BDD 的电导率随硼含量的增加而增加。通过反复的加热和冷却循环,证实了加热器的稳定性和加热重现性。使用BDD加热器在高于10 GPa的压力下成功产生了高达约3700 °C 的温度。在SPring - 8同步加速器上,通过原位X射线衍射研究并使用MgO压力标度评估了BDD加热器对压力产生效率的影响。在高达1500吨的压力下,压力产生效率低于使用石墨 - 硼复合加热器时的效率。在3000 °C以上实现稳定的温度产生,使得能够进行硅酸盐的熔化实验,并测定下地幔条件下硅酸盐熔体的一些物理性质(如粘度)。

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