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Isotropic quantum scattering and unconventional superconductivity

机译:各向同性量子散射和非常规超导

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Superconductivity without phonons has been proposed for strongly correlated electron materials that are tuned close to a zero-temperature magnetic instability of itinerant charge carriers. Near this boundary, quantum fluctuations of magnetic degrees of freedom assume the role of phonons in conventional superconductors, creating an attractive interaction that 'glues' electrons into superconducting pairs. Here we show that superconductivity can arise from a very different spectrum of fluctuations associated with a local (or Kondo-breakdown) quantum critical point that is revealed in isotropic scattering of charge carriers and a sublinear, temperature-dependent electrical resistivity. At this critical point, accessed by applying pressure to the strongly correlated, local-moment antiferromagnet CeRhIn_5, magnetic and charge fluctuations coexist and produce electronic scattering that is maximal at the optimal pressure for superconductivity. This previously unanticipated source of pairing glue opens possibilities for understanding and discovering new unconventional forms of superconductivity.
机译:对于声强相关的电子材料,已经提出了不带声子的超导性,这种材料已被调整为接近流动电荷载流子的零温度磁性不稳定性。在这个边界附近,磁性自由度的量子涨落在常规超导体中起声子的作用,产生了吸引人的相互作用,将电子“胶合”成超导对。在这里,我们表明,超导电性可能来自与局部(或近藤击穿)量子临界点相关的非常不同的波动谱,该波动在电荷载流子的各向同性散射和与温度有关的亚线性电阻率中揭示。在这个临界点上,通过向强相关的局部矩反铁磁体CeRhIn_5施加压力可以访问磁性和电荷波动并存,并产生电子散射,该散射在超导的最佳压力下最大。这种以前无法预料的配对胶来源为理解和发现超导电性的新非常规形式提供了可能性。

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