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Doping dependence of spin excitations and its correlations with high-temperature superconductivity in iron pnictides

机译:铁化物中自旋激发的掺杂依赖性及其与高温超导的关系

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摘要

High-temperature superconductivity in iron pnictides occurs when electrons and holes are doped into their antiferromagnetic parent compounds. Since spin excitations may be responsible for electron pairing and superconductivity, it is important to determine their electron/hole-doping evolution and connection with superconductivity. Here we use inelastic neutron scattering to show that while electron doping to the antiferromagnetic BaFe2As2 parent compound modifies the low-energy spin excitations and their correlation with superconductivity (<50 meV) without affecting the high-energy spin excitations (>100 meV), hole-doping suppresses the high-energy spin excitations and shifts the magnetic spectral weight to low-energies. In addition, our absolute spin susceptibility measurements for the optimally hole-doped iron pnictide reveal that the change in magnetic exchange energy below and above Tc can account for the superconducting condensation energy. These results suggest that high-Tc superconductivity in iron pnictides is associated with both the presence of high-energy spin excitations and a coupling between low-energy spin excitations and itinerant electrons.
机译:当电子和空穴被掺杂到其反铁磁性母体化合物中时,铁素化物中就会发生高温超导现象。由于自旋激发可能负责电子配对和超导,因此确定其电子/空穴掺杂的演化以及与超导的联系非常重要。在这里,我们使用非弹性中子散射来表明,在反铁磁BaFe2As2母体化合物中掺杂电子会修饰低能自旋激发及其与超导性的相关性(<50 meV),而不会影响高能自旋激发(> 100 meV),空穴掺杂抑制了高能自旋激发并将磁谱权重转移到低能。此外,我们对最佳掺杂空穴的铁素体的绝对自旋磁化率测量表明,低于和高于Tc的磁交换能量的变化可以解释超导冷凝能量。这些结果表明,铁素化物中的高Tc超导性与高能自旋激发的存在以及低能自旋激发与流动电子之间的耦合有关。

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