Daniel Staško, Petr Proschek, Jiří Prchal, Milan Klicpera
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引用次数: 0
摘要
A2Ir2O7铱酸酯被证明以几何受挫的焦绿石结构结晶,在稀土阳离子取代、温度变化和外部压力作用下保持稳定。然而,原子间距离的变化和晶格中的局部畸变经常导致复杂的电子性质。研究了光- a - iridates的低温行为,包括其随压力的演变。本压力研究报告了重稀土Lu2Ir2O7和Er2Ir2O7的电输运和磁输运性质。这两种化合物都显示出由Ir亚晶格中all-in-all (AIAO)型的反铁磁有序引起的半导体-绝缘体转变。在3gpa的压力下,转变单调地向更高的温度移动约20k。由于电阻率的转变起源于反铁磁阶,因此后者也有望随着施加压力而增强。在磁场中冷却后,形成净磁矩不为零的AIAO/AOAI畴结构,在Lu2Ir2O7的磁电阻率中以不对称项反映其自身。压力的施加增强了不对称项。在整个重稀土A2Ir2O7系列(A = Gd - Lu)中也发现了相同的行为,尽管其磁电阻率特征被磁性A阳离子的更强响应所掩盖。
Pressure-tuned magnetism and conductivity in pyrochlore iridates Lu2Ir2O7 and Er2Ir2O7.
A2Ir2O7 iridates were proven to crystallise in the geometrically frustrated pyrochlore structure, which remains stable upon rare-earth cation substitution, temperature variation, and external pressure application. However, the change of interatomic distances and local distortions in the lattice frequently leads to complex electronic properties. The low-temperature behaviour in light-A iridates has been thoroughly investigated, including its evolution with pressure. The present pressure study reports the electrical transport and magnetotransport properties in heavy rare-earth Lu2Ir2O7 and Er2Ir2O7. Both compounds reveal a semiconductor-insulator transition induced by the antiferromagnetic ordering of the all-in-all-out (AIAO) type in the Ir sublattice. The transition monotonously shifts to a higher temperature under applied pressure by approximately 20 K at 3 GPa. As the transition in resistivity originates in the antiferromagnetic order, the latter is expected to be enhanced with the applied pressure as well. Upon cooling the compound in a magnetic field, the AIAO/AOAI domain structure with non-zero net magnetic moment is formed, mirroring itself in an asymmetric term in the magnetoresistivity of Lu2Ir2O7. The application of pressure then enhances the asymmetric term. The same behaviour is proposed for the whole heavy rare-earth A2Ir2O7 series (A = Gd - Lu), although with magnetoresistivity features masked significantly by a stronger response of magnetic A cations.
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期刊介绍:
Journal of Physics: Condensed Matter covers the whole of condensed matter physics including soft condensed matter and nanostructures. Papers may report experimental, theoretical and simulation studies. Note that papers must contain fundamental condensed matter science: papers reporting methods of materials preparation or properties of materials without novel condensed matter content will not be accepted.