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A new technology for controlling in-situ oxygen fugacity in diamond anvil cells and measuring electrical conductivity of anhydrous olivine at high pressures and temperatures

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【作者】 沈文舒吴雷欧天吉岳冬辉冀婷婷韩永昊许文良高春晓

【Author】 Wen-Shu Shen;Lei Wu;Tian-Ji Ou;Dong-Hui Yue;Ting-Ting Ji;Yong-Hao Han;Wen-Liang Xu;Chun-Xiao Gao;State Key Laboratory for Superhard Materials,Jilin University;School of Mechatronics Engineering,Guizhou Minzu University;College of Earth Sciences,Jilin University;

【通讯作者】 高春晓;

【机构】 State Key Laboratory for Superhard Materials,Jilin UniversitySchool of Mechatronics Engineering,Guizhou Minzu UniversityCollege of Earth Sciences,Jilin University

【摘要】 We present a novel technique for controlling oxygen fugacity, which is broadly used to in-situ measure the electrical conductivities in minerals and rocks during diamond anvil cell experiments. The electrical conductivities of olivine are determined under controlled oxygen fugacity conditions(Mo–MoO2) at pressures up to 4.0 GPa and temperatures up to 873 K. The advantages of this new technique enable the measuring of the activation enthalpy, activation energy, and activation bulk volume in the Arrhenius relationship. This provides an improved understanding of the mechanism of conduction in olivine. Electrical conduction in olivine is best explained by small polaron movement, given the oxygen fugacity-dependent variations in conductivity.

【Abstract】 We present a novel technique for controlling oxygen fugacity, which is broadly used to in-situ measure the electrical conductivities in minerals and rocks during diamond anvil cell experiments. The electrical conductivities of olivine are determined under controlled oxygen fugacity conditions(Mo–MoO2) at pressures up to 4.0 GPa and temperatures up to 873 K. The advantages of this new technique enable the measuring of the activation enthalpy, activation energy, and activation bulk volume in the Arrhenius relationship. This provides an improved understanding of the mechanism of conduction in olivine. Electrical conduction in olivine is best explained by small polaron movement, given the oxygen fugacity-dependent variations in conductivity.

【基金】 Project supported by the National Natural Science Foundation of China(Grant Nos.11674404,41330206,and 11374121)
  • 【文献出处】 Chinese Physics B ,中国物理B , 编辑部邮箱 ,2020年01期
  • 【分类号】P578.16;P575
  • 【下载频次】35
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