Tytarenko Alona, Huang Yingkai, de Visser Anne, Johnston Steve, van Heumen Erik
van der Waals-Zeeman institute, University of Amsterdam Amsterdam XL, 1098 XH, The Netherlands.
Department of Physics and Astronomy, University of Tennessee, Knoxville, TN 37996, USA.
Sci Rep. 2015 Jul 23;5:12421. doi: 10.1038/srep12421.
There are two prerequisites for understanding high-temperature (high-Tc) superconductivity: identifying the pairing interaction and obtaining a correct description of the normal state from which superconductivity emerges. The nature of the normal state of iron-pnictide superconductors, and the role played by correlations arising from partially screened interactions, are still under debate. Here we show that the normal state of carefully annealed electron-doped BaFe(2-x)Co(x)As2 at low temperatures has all the hallmark properties of a local Fermi liquid, with a more incoherent state emerging at elevated temperatures, an identification made possible using bulk-sensitive optical spectroscopy with high frequency and temperature resolution. The frequency dependent scattering rate extracted from the optical conductivity deviates from the expected scaling M2 (ω, T) ∝ (ħω)(2) + (pπkBT)(2) with p ≈ 1.47 rather than p = 2, indicative of the presence of residual elastic resonant scattering. Excellent agreement between the experimental results and theoretical modeling allows us to extract the characteristic Fermi liquid scale T0 ≈ 1700 K. Our results show that the electron-doped iron-pnictides should be regarded as weakly correlated Fermi liquids with a weak mass enhancement resulting from residual electron-electron scattering from thermally excited quasi-particles.
理解高温(高Tc)超导有两个先决条件:确定配对相互作用,并对超导从中出现的正常态获得正确描述。铁基超导材料正常态的性质以及由部分屏蔽相互作用产生的关联所起的作用仍在争论中。在此,我们表明,经过精心退火的电子掺杂BaFe(2-x)Co(x)As2在低温下的正常态具有局域费米液体的所有标志性特性,在较高温度下会出现更非相干的状态,这一识别是通过具有高频率和温度分辨率的体敏感光谱实现的。从光导率中提取的频率相关散射率偏离了预期的标度M2(ω, T) ∝ (ħω)2 + (pπkBT)2,其中p ≈ 1.47而非p = 2,这表明存在残余弹性共振散射。实验结果与理论模型之间的出色吻合使我们能够提取特征费米液体标度T0 ≈ 1700 K。我们的结果表明,电子掺杂的铁基超导体应被视为弱关联费米液体,由于热激发准粒子的残余电子-电子散射导致质量有微弱增强。