论文标题

(TMTSF)$ _ 2 $ clo $ _4 $的温度和阴离子障碍的超导域的形状和体积分数的演变

Evolution of shape and volume fraction of superconducting domains with temperature and anion disorder in (TMTSF)$_2$ClO$_4$

论文作者

Kesharpu, Kaushal K., Kochev, Vladislav D., Grigoriev, Pavel D.

论文摘要

在高度各向异性有机超导体(TMTSF)中,$ _ 2 $ clo $ _4 $,超导体(SC)相交,具有金属和旋转密度波阶段,以域的形式。使用Maxwell-Garnett近似(MGA),我们从各种温度和阴离子障碍的电阻率数据中计算体积比,并估算这些嵌入式SC域的形状,并由(TMTSF)$ _ {2} $ Clo $ _ {4} $ sample的冷却速率或退火时间控制。我们发现冷却速率和退火时间的变化对SC域的形状有所不同。在所有情况下,SC域都具有扁态形状,是沿着层中$ z $轴的最短。这与用于解释各向异性超导性发作的广泛假定的丝状超导性相矛盾。我们表明,可以通过各向异性背景电阻的分析MGA理论来描述SC转变处的各向异性电阻率下降,而各向异性$ T_C $可以通过考虑样品的有限尺寸和扁平形状来解释。由于平面/针样形状,通过SC域渗透的概率是最短的样品尺寸($ z $ -Axis),并且沿样品长度($ x $ -Axis)最低。我们的理论可以应用于其他异质性超导体,其中SC域的尺寸$ d $远大于SC相干长度$ξ$,例如库酸酯,铁基或有机超导体。当旋转/电荷密度波域嵌入金属背景中时,它也适用,反之亦然。

In highly anisotropic organic superconductor (TMTSF)$_2$ClO$_4$, superconducting (SC) phase coexists with metallic and spin density wave phases in the form of domains. Using the Maxwell-Garnett approximation (MGA), we calculate the volume ratio and estimate the shape of these embedded SC domains from resistivity data at various temperature and anion disorder, controlled by the cooling rate or annealing time of (TMTSF)$_{2}$ClO$_{4}$ samples. We found that the variation of cooling rate and of annealing time affect differently the shape of SC domains. In all cases the SC domains have oblate shape, being the shortest along the interlayer $z$-axis. This contradicts the widely assumed filamentary superconductivity along $z$-axis, used to explain the anisotropic superconductivity onset. We show that anisotropic resistivity drop at the SC transition can be described by the analytical MGA theory with anisotropic background resistance, while the anisotropic $T_c$ can be explained by considering a finite size and flat shape of the samples. Due to a flat/needle sample shape, the probability of percolation via SC domains is the highest along the shortest sample dimension ($z$-axis), and the lowest along the sample length ($x$-axis). Our theory can be applied to other heterogeneous superconductors, where the size $d$ of SC domains is much larger than the SC coherence length $ξ$, e.g. cuprates, iron based or organic superconductors. It is also applicable when the spin/charge-density wave domains are embedded inside a metallic background, or vice versa.

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