论文标题

通过光导率来表征库酸酯中两个电子子系统

Characterization of two electronic subsystems in cuprates through optical conductivity

论文作者

Kumar, C. M. N., Akrap, Ana, Homes, Chris C., Martino, Edoardo, Klebel-Knobloch, Benjamin, Tabis, Wojciech, Barišić, Osor S., Sunko, Denis K., Barišić, Neven

论文摘要

了解非常规超导体以及其他相关材料的物理特性提出了巨大的挑战。它们随着掺杂,频率和温度的不寻常演变经常导致非粉状液体(非FL)解释。在这种情况下,光导率是一个主要挑战。在这里,两个原型丘脑的光谱,不足的HGBA $ _2 $ CUO $ _ {4+δ} $和最佳掺杂的BI $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _2 $ _ $ _ {8+δ} $,基于标准的Fermi Liquid(fl fermi lielig)。在这两个兴奋剂中,都发现完美的频率温度缩放是通过存在第二个间隙的电子子系统来改变的。该非FL组件在FL贡献(由运输独立确定)后作为定义明确的中红外光谱特征出现。 MIR特征的温度,频率和掺杂演化确定了间隙而不是耗散响应。相比之下,发现耗散反应与pnictides和鲜情绘制。这种无偏的FL/非FL分离在整个库酸盐相图上扩展,捕获了正常状态的所有关键特征,并提供了自然解释的原因,为什么超流体密度在过量的一侧减弱。因此,我们在所有分析的物理状态和所有分析化合物中获得了光学响应和运输测量的统一解释。

Understanding the physical properties of unconventional superconductors as well as of other correlated materials presents a formidable challenge. Their unusual evolution with doping, frequency, and temperature has frequently led to non-Fermi-liquid (non-FL) interpretations. Optical conductivity is a major challenge in this context. Here, the optical spectra of two archetypal cuprates, underdoped HgBa$_2$CuO$_{4+δ}$ and optimally-doped Bi$_2$Sr$_2$CaCu$_2$O$_{8+δ}$, are interpreted based on the standard Fermi liquid (FL) paradigm. At both dopings, perfect frequency-temperature FL scaling is found to be modified by the presence of a second, gapped electronic subsystem. This non-FL component emerges as a well-defined mid-infrared spectral feature after the FL contribution -- determined independently by transport -- is subtracted. Temperature, frequency, and doping evolution of the MIR feature identify a gapped rather than dissipative response. In contrast, the dissipative response is found to be relevant for pnictides and ruthenates. Such an unbiased FL/non-FL separation is extended across the cuprate phase diagram, capturing all the key features of the normal state and providing a natural explanation why the superfluid density is attenuated on the overdoped side. Thus, we obtain a unified interpretation of optical responses and transport measurements in all analyzed physical regimes and all analyzed compounds.

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