Institute of High Energy Physics, Chinese Academy of Sciences, Beijing 100049, People's Republic of China.
J Phys Condens Matter. 2012 Mar 21;24(11):115402. doi: 10.1088/0953-8984/24/11/115402. Epub 2012 Feb 21.
Structural stability of the perovskite-type GdMnO(3) has been investigated by the synchrotron angle-dispersive x-ray diffraction technique up to 63 GPa in a diamond anvil cell. GdMnO(3) stays in an orthorhombic structure but undergoes an isostructural phase transition with ~5% volume reduction at 50 GPa. In the parent orthorhombic phase, the compressions along a, b and c axes exhibit a large anisotropic behavior. With increasing pressure, our results show that the distortion and tilts of the MnO(6) octahedra are reduced continuously and the orthorhombic structure evolves towards higher symmetry. By fitting the observed pressure-volume data using the third-order Birch-Murnaghan equation of state, we obtain the bulk modulus B(0) = 156(3) GPa with B(0)' = 6.5(3) for the starting orthorhombic phase. Upon decompression, the starting orthorhombic phase is recovered.
采用同步辐射角分辨 X 射线衍射技术在金刚石对顶砧中研究了钙钛矿型 GdMnO(3)在高达 63 GPa 下的结构稳定性。GdMnO(3)保持正交结构,但在 50 GPa 时经历了约 5%体积减小的同构相转变。在母体正交相中,沿 a、b 和 c 轴的压缩表现出很大的各向异性行为。随着压力的增加,我们的结果表明 MnO(6)八面体的畸变和倾斜不断减小,正交结构向更高的对称性演化。通过使用第三阶 Birch-Murnaghan 状态方程拟合观察到的压力-体积数据,我们得到起始正交相的体弹模量 B(0) = 156(3) GPa,B(0)‘= 6.5(3)。减压后,起始正交相得到恢复。