铜高温超导体La1.6−xNd0.4SrxCuO4的材料制备、单晶生长及相图

Mirela Dragomir, Qianli Ma, J. Clancy, A. Ataei, P. Dube, Sudarshan Sharma, A. Huq, H. Da̧bkowska, L. Taillefer, D. Bruce, Gaulin
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引用次数: 12

摘要

La1.6-xNd0.4SrxCuO4 (Nd-LSCO)是La-214族铜超导体中的一个分支,一直受到人们的关注,这在很大程度上是因为它显示了典型空孔掺杂、高Tc超导的相图的全部复杂性,同时也显示了相对较低的超导临界温度。低超导Tc意味着实验上可获得的磁场可以将超导性抑制到零温度。特别是,这使得Nd-LSCO中T = 0基态的各种输运和热力学研究成为可能,没有超导性,跨越临界掺杂p* = 0.23,即赝隙相结束处。Nd-LSCO的超导特性对其晶体对称性的强烈依赖本身就激发了对Nd-LSCO结构相图的仔细研究。本文对Nd-LSCO单晶和多晶样品的制备和表征进行了系统的研究和总结。本文合成了x在0.01 ~ 0.40范围内的单相多晶样品,并通过光学浮区法生长出了x在0.07、0.12、0.17、0.19、0.225、0.24和0.26范围内的Nd-LSCO大单晶。对这些样品分别在低温和室温(10k和300k)下进行了系统的中子和x射线衍射研究。这些研究使我们能够跟踪各种结构相变,并提出了Nd-LSCO的更新结构相图。特别地,我们发现低温四方相(LTT)在临界掺杂pLTT = 0.255(5)处结束,与p*明显分离。
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Materials preparation, single-crystal growth, and the phase diagram of the cuprate high-temperature superconductor La1.6−xNd0.4SrxCuO4
One branch of the La-214 family of cuprate superconductors, La1.6-xNd0.4SrxCuO4 (Nd-LSCO), has been of significant and sustained interest, in large part because it displays the full complexity of the phase diagram for canonical hole-doped, high Tc superconductivity, while also displaying relatively low superconducting critical temperatures. The low superconducting Tc's imply that experimentally accessible magnetic fields can suppress the superconductivity to zero temperature. In particular, this has enabled various transport and thermodynamic studies of the T = 0 ground state in Nd-LSCO, free of superconductivity, across the critical doping p* = 0.23 where the pseudogap phase ends. The strong dependence of its superconducting properties on its crystal symmetry has itself motivated careful studies of the Nd-LSCO structural phase diagram. This paper provides a systematic study and summary of the materials preparation and characterization of both single crystal and polycrystalline samples of Nd-LSCO. Single-phase polycrystalline samples with x spanning the range from 0.01 to 0.40 have been synthesized, and large single crystals of Nd-LSCO for select x across the region (0.07, 0.12, 0.17, 0.19, 0.225, 0.24, and 0.26) were grown by the optical floating zone method. Systematic neutron and X-ray diffraction studies on these samples were performed at both low and room temperatures, 10 K and 300 K, respectively. These studies allowed us to follow the various structural phase transitions and propose an updated structural phase diagram for Nd-LSCO. In particular, we found that the low-temperature tetragonal (LTT) phase ends at a critical doping pLTT = 0.255(5), clearly separated from p*.
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