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Interplanar coupling-dependent magnetoresistivity in high-purity layered metals

机译:高纯度层状金属中依赖于面内耦合的磁阻

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摘要

The magnetic field-induced changes in the conductivity of metals are the subject of intense interest, both for revealing new phenomena and as a valuable tool for determining their Fermi surface. Here we report a hitherto unobserved magnetoresistive effect in ultra-clean layered metals, namely a negative longitudinal magnetoresistance that is capable of overcoming their very pronounced orbital one. This effect is correlated with the interlayer coupling disappearing for fields applied along the so-called Yamaji angles where the interlayer coupling vanishes. Therefore, it is intrinsically associated with the Fermi points in the field-induced quasi-one-dimensional electronic dispersion, implying that it results from the axial anomaly among these Fermi points. In its original formulation, the anomaly is predicted to violate separate number conservation laws for left- and right-handed chiral (for example, Weyl) fermions. Its observation in PdCoO2, PtCoO2 and Sr2RuO4 suggests that the anomaly affects the transport of clean conductors, in particular near the quantum limit.
机译:磁场引起的金属电导率变化引起人们极大的兴趣,既揭示新现象,又作为确定其费米表面的有价值的工具。在这里,我们报道了迄今为止在超清洁层状金属中尚未观察到的磁阻效应,即负纵向磁阻能够克服其非常明显的轨道磁阻。这种影响与层间耦合消失有关,该层间耦合消失于沿所谓的Yamaji角施加的层间耦合消失的地方。因此,它本质上与场致准一维电子色散中的费米点有关,这暗示它是由这些费米点之间的轴向异常引起的。在其原始表述中,预计该异常会违反左手和右手手性(例如Weyl)费米子的单独的数量守恒律。它在PdCoO2,PtCoO2和Sr2RuO4中的观察结果表明,异常影响清洁导体的传输,特别是在量子极限附近。

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