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Two types of superconducting domes in unconventional superconductors

机译:非常规超导体中的两种超导圆顶

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Uncovering the origin of unconventional superconductivity is often plagued by the overwhelming material diversity with varying normal and superconducting (SC) properties. In this article, we deliver a comprehensive study of the SC properties and phase diagrams using multiple tunings (such as disorder, pressure or magnetic field in addition to doping and vice versa) across several families of unconventional superconductors, including the copper-oxides, heavy-fermions, organics and the recently discovered iron-pnictides, iron-chalcogenides, and oxybismuthides. We discover that all these families often possess two types of SC domes, with lower and higher SC transition temperatures T c, both unconventional but with distinct SC and normal states properties. The lower T c dome arises with or without a quantum critical point (QCP), and not always associated with a non-Fermi liquid (NFL) background. On the contrary, the higher-T c dome clearly stems from a NFL or strange metal phase, without an apparent intervening phase transition or a QCP. The two domes appear either fully separated in the phase diagram, or merged into one, or arise independently owing to their respective normal state characteristics. Our findings suggest that a QCP-related mechanism is an unlikely scenario for the NFL phase in these materials, and thereby narrows the possibility towards short-range fluctuations of various degrees of freedom in the momentum and frequency space. We also find that NFL physics may be a generic route to higher-T c superconductivity.
机译:具有非同寻常的超导性的起源常常受到材料的多样性的困扰,这些材料的多样性具有不同的法向和超导(SC)特性。在本文中,我们对多个非常规超导体系列(包括重金属的氧化铜)进行了多次调谐(除掺杂之外还包括无序,压力或磁场,反之亦然),从而对SC特性和相图进行了全面的研究。 -费米子,有机物以及最近发现的铁磷化物,铁硫属化物和氧铋化物。我们发现,所有这些家族通常都拥有两种类型的SC穹顶,其SC转变温度T c较低和较高,两者都是非常规的,但具有不同的SC和正常态特性。较低的T c圆顶是在有或没有量子临界点(QCP)的情况下出现的,并不总是与非费米液体(NFL)背景相关。相反,较高T c的穹顶显然来自NFL或奇怪的金属相,而没有明显的中间相变或QCP。这两个圆顶在相图中完全分开出现,或者合并成一个,或者由于其各自的正常状态特性而独立出现。我们的研究结果表明,与QCP相关的机制对于这些材料的NFL阶段而言是不太可能的情况,因此缩小了动量和频率空间中各种自由度的短期波动的可能性。我们还发现,NFL物理学可能是通向更高Tc超导性的通用途径。

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