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Hall-effect evolution across a heavy-fermion quantum critical point

机译:重费米量子临界点的霍尔效应演化

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Aquantum critical point (QCP) develops in a material at absolute zero when a new form of order smoothly emerges in its ground state. QCPs are of great current interest because of their singular ability to influence the finite temperature properties of materials. Recently, heavy-fermion metals have played a key role in the study of antiferromagnetic QCPs. To accommodate the heavy electrons, the Fermi surface of the heavy-fermion paramagnet is larger than that of an antiferromagnet(1-3). An important unsolved question is whether the Fermi surface transformation at the QCP develops gradually, as expected if the magnetism is of spin-density-wave (SDW) type(4,5), or suddenly, as expected if the heavy electrons are abruptly localized by magnetism(6-8). Here we report measurements of the low-temperature Hall coefficient R-H) - a measure of the Fermi surface volume - in the heavy-fermion metal YbRh2Si2 upon field-tuning it from an antiferromagnetic to a paramagnetic state. RH undergoes an increasingly rapid change near the QCP as the temperature is lowered, extrapolating to a sudden jump in the zero temperature limit. We interpret these results in terms of a collapse of the large Fermi surface and of the heavy-fermion state itself precisely at the QCP.
机译:当一种新形式的阶次在其基态中平稳出现时,量子临界点(QCP)在材料中的绝对零点处发展。 QCP由于其影响材料有限温度特性的奇异能力而备受当前关注。近年来,重铁金属在反铁磁QCP的研究中发挥了关键作用。为了容纳重电子,重费米顺磁体的费米表面要比反铁磁体(1-3)大。一个重要的未解决问题是,如果磁性是自旋密度波(SDW)类型(4,5),QCP处的费米表面转变是逐渐发展,还是如果重电子突然定位,则是突然发展?通过磁性(6-8)。在这里,我们报告了在重铁金属YbRh2Si2从反铁磁状态变为顺磁状态时,对低温霍尔系数R-H)(费米表面体积的度量)的测量结果。随着温度降低,RH在QCP附近经历越来越快的变化,推断为零温度极限的突然跃升。我们用大费米表面的塌陷和恰好在QCP处的重费米子态本身来解释这些结果。

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