Department of Physics, Kyoto University, Kyoto 606-8502, Japan.
Proc Natl Acad Sci U S A. 2013 Feb 26;110(9):3293-7. doi: 10.1073/pnas.1221976110. Epub 2013 Feb 12.
When a second-order magnetic phase transition is tuned to zero temperature by a nonthermal parameter, quantum fluctuations are critically enhanced, often leading to the emergence of unconventional superconductivity. In these "quantum critical" superconductors it has been widely reported that the normal-state properties above the superconducting transition temperature T(c) often exhibit anomalous non-Fermi liquid behaviors and enhanced electron correlations. However, the effect of these strong critical fluctuations on the superconducting condensate below T(c) is less well established. Here we report measurements of the magnetic penetration depth in heavy-fermion, iron-pnictide, and organic superconductors located close to antiferromagnetic quantum critical points, showing that the superfluid density in these nodal superconductors universally exhibits, unlike the expected T-linear dependence, an anomalous 3/2 power-law temperature dependence over a wide temperature range. We propose that this noninteger power law can be explained if a strong renormalization of effective Fermi velocity due to quantum fluctuations occurs only for momenta k close to the nodes in the superconducting energy gap Δ(k). We suggest that such "nodal criticality" may have an impact on low-energy properties of quantum critical superconductors.
当二阶磁相变通过非热参数调谐至零温度时,量子涨落会被临界增强,这往往会导致非常规超导的出现。在这些“量子临界”超导体中,人们广泛报道称,超导转变温度 T(c) 以上的正常态性质通常表现出反常的非费米液体行为和增强的电子关联。然而,这些强临界涨落对 T(c)以下超导凝聚态的影响还不太确定。在这里,我们报告了在靠近反铁磁量子临界点的重费米子、铁磷化物和有机超导体中磁穿透深度的测量结果,结果表明,这些节线超导体中的超导流体密度普遍表现出与预期的 T 线性依赖关系不同的反常 3/2 次幂温度依赖性,在很宽的温度范围内都是如此。我们提出,如果由于量子涨落导致有效费米速度的强烈重整化仅发生在超导能隙 Δ(k)的节线附近的动量 k 处,那么这种非整数幂律就可以得到解释。我们认为,这种“节线临界性”可能会对量子临界超导体的低能性质产生影响。