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合成具有 Tc ≈ 45 K 的新型碱金属-有机溶剂插层铁硒高温超导体。

Synthesis of a new alkali metal-organic solvent intercalated iron selenide superconductor with Tc ≈ 45 K.

机构信息

Laboratory for Developments and Methods, Paul Scherrer Institute, 5232 Villigen PSI, Switzerland.

出版信息

J Phys Condens Matter. 2012 Sep 26;24(38):382202. doi: 10.1088/0953-8984/24/38/382202. Epub 2012 Sep 4.

DOI:10.1088/0953-8984/24/38/382202
PMID:22945447
Abstract

We report on a new iron selenide superconductor with a T(c) onset of 45 K and the nominal composition Li(x)(C(5)H(5)N)(y)Fe(2-z)Se(2), synthesized via intercalation of dissolved alkaline metal in anhydrous pyridine at room temperature. This superconductor exhibits a broad transition, reaching zero resistance at 10 K. Magnetization measurements reveal a superconducting shielding fraction of approximately 30%. Analogous phases intercalated with Na, K and Rb were also synthesized and characterized. The superconducting transition temperature of Li(x)(C(5)H(5)N)(y)Fe(2-z)Se(2) is clearly enhanced in comparison to those of the known superconductors FeSe(0.98) (T(c) ~ 8 K) and A(x)Fe(2-y)Se(2) (T(c) ~ 27-32 K) and is in close agreement with critical temperatures recently reported for Li(x)(NH(3))(y)Fe(2-z)Se(2). Post-annealing of intercalated material (Li(x)(C(5)H(5)N)(y)Fe(2-z)Se(2)) at elevated temperatures drastically enlarges the c-parameter of the unit cell (~44%) and increases the superconducting shielding fraction to nearly 100%. Our findings indicate a new synthesis route leading to possibly even higher critical temperatures for materials in this class: by intercalation of organic compounds between Fe-Se layers.

摘要

我们报告了一种新的铁硒化物超导体,其 T(c)起始温度为 45 K,其组成通式为 Li(x)(C(5)H(5)N)(y)Fe(2-z)Se(2),通过在室温下将溶解的碱性金属插入无水吡啶中合成。这种超导体表现出宽的转变,在 10 K 时达到零电阻。磁化测量显示超导屏蔽分数约为 30%。用 Na、K 和 Rb 插层的类似相也被合成并进行了表征。与已知的超导体 FeSe(0.98)(T(c)8 K)和 A(x)Fe(2-y)Se(2)(T(c)27-32 K)相比,Li(x)(C(5)H(5)N)(y)Fe(2-z)Se(2)的超导转变温度明显提高,与最近报道的 Li(x)(NH(3))(y)Fe(2-z)Se(2)的临界温度非常接近。插层材料(Li(x)(C(5)H(5)N)(y)Fe(2-z)Se(2)在高温下退火后,单元晶胞的 c 参数显著增大(约 44%),超导屏蔽分数增加到近 100%。我们的发现表明了一种新的合成途径,可能会使这类材料的临界温度更高:通过在 Fe-Se 层之间插入有机化合物。

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