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首页> 外文期刊>Physical review letters >Mutual Independence of Critical Temperature and Superfluid Density under Pressure in Optimally Electron-Doped Superconducting LaFeAsO1-xFx
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Mutual Independence of Critical Temperature and Superfluid Density under Pressure in Optimally Electron-Doped Superconducting LaFeAsO1-xFx

机译:最佳电子掺杂超导LaFeAsO1-xFx中临界温度与压力下超流体密度的相互独立性

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摘要

The superconducting properties of LaFeAsO1-xFx under conditions of optimal electron doping are investigated upon the application of external pressure up to similar to 23 kbar. Measurements of muon-spin spectroscopy and dc magnetometry evidence a clear mutual independence between the critical temperature T-c and the low-temperature saturation value for the ratio n(s)/m* (superfluid density over effective band mass of Cooper pairs). Remarkably, a dramatic increase of similar to 30% is reported for n(s)/m* at the maximum pressure value while T-c is substantially unaffected in the whole accessed experimental window. We argue and demonstrate that the explanation for the observed results must take the effect of nonmagnetic impurities on multiband superconductivity into account. In particular, the unique possibility to modify the ratio between intraband and interband scattering rates by acting on structural parameters while keeping the amount of chemical disorder constant is a striking result of our proposed model.
机译:通过施加高达23 kbar的外部压力,研究了在最佳电子掺杂条件下LaFeAsO1-xFx的超导性能。 μ自旋光谱仪和直流磁力计的测量结果表明,临界温度T-c和低温饱和值之间的比率n(s)/ m *(库珀对有效带质量上的超流体密度)之间存在明显的相互独立性。值得注意的是,据报道,在最大压力值下,n(s)/ m *的急剧增加接近30%,而T-c在整个访问的实验窗口中基本不受影响。我们争论并证明,对观测结果的解释必须考虑非磁性杂质对多带超导性的影响。特别是,通过作用于结构参数同时保持化学无序量恒定的方法来修改带内和带间散射率之间的比率的独特可能性是我们提出的模型的惊人结果。

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  • 来源
    《Physical review letters 》 |2015年第24期| 247004.1-247004.6| 共6页
  • 作者单位

    Leibniz Inst Festkorper & Werkstoffforsch IFW Dre, D-01171 Dresden, Germany;

    Ruhr Univ Bochum, Inst Theoret Phys 3, D-44801 Bochum, Germany;

    Leibniz Inst Festkorper & Werkstoffforsch IFW Dre, D-01171 Dresden, Germany;

    Paul Scherrer Inst, Lab Muon Spin Spect, CH-5232 Villigen, Switzerland;

    Univ Pavia, Dipartimento Fis, I-27100 Pavia, Italy|Univ Pavia, Unita CNISM Pavia, I-27100 Pavia, Italy;

    Ruhr Univ Bochum, Inst Theoret Phys 3, D-44801 Bochum, Germany;

    Russian Acad Sci, Ural Branch, Inst Electrophys, Ekaterinburg 620016, Russia;

    Leibniz Inst Festkorper & Werkstoffforsch IFW Dre, D-01171 Dresden, Germany;

    Leibniz Inst Festkorper & Werkstoffforsch IFW Dre, D-01171 Dresden, Germany;

    Leibniz Inst Festkorper & Werkstoffforsch IFW Dre, D-01171 Dresden, Germany|Tech Univ Dresden, Inst Festkorperphys, D-01062 Dresden, Germany;

    Paul Scherrer Inst, Lab Muon Spin Spect, CH-5232 Villigen, Switzerland;

    Ruhr Univ Bochum, Inst Theoret Phys 3, D-44801 Bochum, Germany|Fed Univ, Kazan Volga Reg, Kazan 420008, Russia;

    Leibniz Inst Festkorper & Werkstoffforsch IFW Dre, D-01171 Dresden, Germany|Tech Univ Dresden, Inst Festkorperphys, D-01062 Dresden, Germany;

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