论文标题
单晶SM $ _2 $ ir $ _2 $ o $ $ _7 $的磁转移跨压力诱导的量子 - 关键量相边界
Magnetotransport of single crystal Sm$_2$Ir$_2$O$_7$ across the pressure-induced quantum-critical phase boundary
论文作者
论文摘要
稀有地球的pyrochlore触发了两个转角共享四面体的互锁磁性旋转sublattices,可以携带沮丧的矩,异国情调的激发和高度相关的电子的独特组合。它们也是第一个预测显示拓扑Weyl半准和轴突绝缘子相的系统。 We have measured the transport and magnetotransport properties of single-crystal Sm$_2$Ir$_2$O$_7$ up to and beyond the pressure-induced quantum critical point for all-in-all-out (AIAO) Ir order at $p_{\rm c}$ = 63 kbar previously identified by resonant X-ray scattering and close to which Weyl semimetallic behavior has been previously predicted.我们的发现推翻了公认的对AIAO顺序抑制的期望应导致金属传导持续至零温度。取而代之的是,在进一步施加压力的情况下,电阻率最低温度跟踪了高达30 kbar的AIAO订购温度的降低,该温度最多开始升高,这表明存在导致非金属行为的第二个尚未确定的未识别机制。 Magnetotransport确实跟踪了IR磁性的抑制,但是,仅在AIAO相边界内观察到的磁滞,类似于HO $ _2 $ IR $ $ _2 $ o $ $ $ _7 $的磁滞,并归因于IR域的塑性变形。 Around $p_{\rm c}$ we find the emergence of a new type of electronic phase, characterized by a negative magnetoresistance with small hysteresis at the lowest temperatures, and hysteresis-free positive magnetoresistance above approximately 5 K. The temperature dependence of our low-temperature transport data are found to be best described by a model consistent with a Weyl semimetal across the entire pressure range.
Rare-earth pyrochlore iridates host two interlocking magnetic sublattices of corner-sharing tetrahedra and can harbour a unique combination of frustrated moments, exotic excitations and highly correlated electrons. They are also the first systems predicted to display both topological Weyl semimetal and axion insulator phases. We have measured the transport and magnetotransport properties of single-crystal Sm$_2$Ir$_2$O$_7$ up to and beyond the pressure-induced quantum critical point for all-in-all-out (AIAO) Ir order at $p_{\rm c}$ = 63 kbar previously identified by resonant X-ray scattering and close to which Weyl semimetallic behavior has been previously predicted. Our findings overturn the accepted expectation that the suppression of AIAO order should lead to metallic conduction persisting down to zero temperature. Instead, the resistivity-minimum temperature, which tracks the decrease in the AIAO ordering temperature for pressures up to 30~kbar, begins to increase under further application of pressure, pointing to the presence of a second as-yet unidentified mechanism leading to non-metallic behavior. The magnetotransport does track the suppression of Ir magnetism, however, with a strong hysteresis observed only within the AIAO phase boundary, similar to that found for Ho$_2$Ir$_2$O$_7$ and attributed to plastic deformation of Ir domains. Around $p_{\rm c}$ we find the emergence of a new type of electronic phase, characterized by a negative magnetoresistance with small hysteresis at the lowest temperatures, and hysteresis-free positive magnetoresistance above approximately 5 K. The temperature dependence of our low-temperature transport data are found to be best described by a model consistent with a Weyl semimetal across the entire pressure range.