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高压下LiMn₂O₄中尖晶石到CaFe₂O₄型的结构转变

Spinel-to-CaFe2O4-type structural transformation in LiMn2O4 under high pressure.

作者信息

Yamaura Kazunari, Huang Qingzhen, Zhang Lianqi, Takada Kazunori, Baba Yuji, Nagai Takuro, Matsui Yoshio, Kosuda Kosuke, Takayama-Muromachi Eiji

机构信息

Advanced Nano Materials Laboratory, 1-1 Namiki, Tsukuba, Ibaraki 305-0044, Japan.

出版信息

J Am Chem Soc. 2006 Jul 26;128(29):9448-56. doi: 10.1021/ja0612302.

Abstract

A new form of LiMn2O4 is reported. The structure is the CaFe2O4-type and 6% denser than the spinel. The structure transformation was achieved by heating at 6 GPa. Analysis of the neutron diffraction pattern confirmed an average of the structure; the unit cell was orthorhombic at a = 8.8336(5) angstroms, b = 2.83387(18) angstroms, and c = 10.6535(7) angstroms (Pnma). Electron diffraction patterns indicated an order of superstructure 3a x b x c, which might be initiated by Li vacancies. The exact composition is estimated at Li(0.92)Mn2O4 from the structure analysis and quantity of intercalated Li. The polycrystalline CaFe2O4-type compound showed semiconducting-like characters over the studied range above 5 K. The activation energy was reduced to approximately 0.27 eV from approximately 0.40 eV at the spinel form, suggesting a possible enhancement of hopping mobility. Magnetic and specific-heat data indicated a magnetically glassy transition at approximately 10 K. As the CaFe2O4-type transition was observed for the mineral MgAl2O4, hence the new form of the lithium manganese oxide would provide valuable opportunities to study not only the magnetism of strongly correlated electrons but also the thermodynamics of the phase transition in the mantle.

摘要

报道了一种新型的LiMn₂O₄。其结构为CaFe₂O₄型,比尖晶石密度高6%。通过在6吉帕压力下加热实现了结构转变。中子衍射图谱分析证实了该结构的平均值;晶胞为正交晶系,a = 8.8336(5)埃,b = 2.83387(18)埃,c = 10.6535(7)埃(Pnma)。电子衍射图谱表明存在3a×b×c的超结构有序,这可能是由锂空位引发的。根据结构分析和嵌入锂的量,估计其确切组成为Li(0.92)Mn₂O₄。多晶CaFe₂O₄型化合物在5 K以上的研究温度范围内表现出类似半导体的特性。激活能从尖晶石形式的约0.40电子伏特降至约0.27电子伏特,表明跳跃迁移率可能增强。磁性和比热数据表明在约10 K处存在磁玻璃转变。由于在矿物MgAl₂O₄中观察到了CaFe₂O₄型转变,因此这种新型锂锰氧化物不仅将为研究强关联电子的磁性提供宝贵机会,还将为研究地幔中的相变热力学提供宝贵机会。

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