Materials Department and Materials Research Laboratory, University of California, Santa Barbara, CA 93106, USA.
J Phys Condens Matter. 2013 Aug 14;25(32):326001. doi: 10.1088/0953-8984/25/32/326001. Epub 2013 Jul 12.
Magnetic ordering in the geometrically frustrated magnetic oxide spinels MgCr2O4 and ZnCr2O4 is accompanied by a structural change that helps to relieve the frustration. Analysis of high-resolution synchrotron x-ray scattering reveals that the low-temperature structures are well described by a two-phase model of tetragonal I41/amd and orthorhombic Fddd symmetries. The Cr4 tetrahedra of the pyrochlore lattice are distorted at these low-temperatures, with the Fddd phase displaying larger distortions than the I41/amd phase. The spin-Jahn-Teller distortion is approximately one order of magnitude smaller than is observed in first-order Jahn-Teller spinels such as NiCr2O4 and CuCr2O4. In analogy with NiCr2O4 and CuCr2O4, we further suggest that the precise nature of magnetic ordering can itself provide a second driving force for structural change.
几何阻挫磁尖晶石 MgCr2O4 和 ZnCr2O4 中的磁有序伴随着结构变化,有助于缓解阻挫。高分辨率同步加速器 X 射线散射分析表明,低温结构可以很好地用四方 I41/amd 和正交 Fddd 对称性的两相模型来描述。在这些低温下,尖晶石晶格的 Cr4 四面体发生扭曲,Fddd 相的扭曲比 I41/amd 相大。自旋 Jahn-Teller 扭曲大约比在 NiCr2O4 和 CuCr2O4 等一级 Jahn-Teller 尖晶石中观察到的扭曲小一个数量级。类比于 NiCr2O4 和 CuCr2O4,我们进一步提出,磁有序的精确性质本身可以为结构变化提供第二个驱动力。