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Strongly correlated superconductivity in a copper-based metal-organic framework with a perfect kagome lattice

机译:具有完美的Kagome格子的铜基金属有机框架中具有强烈相关的超导性

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摘要

Metal-organic frameworks (MOFs), which are self-assemblies of metal ions and organic ligands, provide a tunable platform to search a new state of matter. A two-dimensional (2D) perfect kagome lattice, whose geometrical frustration is a key to realizing quantum spin liquids, has been formed in the π ? d conjugated 2D MOF [Cu 3 (C 6 S 6 )] n (Cu-BHT). The recent discovery of its superconductivity with a critical temperature T c of 0.25 kelvin raises fundamental questions about the nature of electron pairing. Here, we show that Cu-BHT is a strongly correlated unconventional superconductor with extremely low superfluid density. A nonexponential temperature dependence of superfluid density is observed, indicating the possible presence of superconducting gap nodes. The magnitude of superfluid density is much smaller than those in conventional superconductors and follows the Uemura’s relation of strongly correlated superconductors. These results imply that the unconventional superconductivity in Cu-BHT originates from electron correlations related to spin fluctuations of kagome lattice.
机译:金属有机框架(MOF)是金属离子和有机配体的自组装,提供可调平台,以搜索新的物质状态。一种二维(2D)完美的Kagome格子,其几何挫折是实现量子旋转液体的关键,在π? D缀合的2D MOF [Cu 3(C 6 S 6)] N(Cu-BHT)。最近发现其超导性与0.25 kelvin的临界温度T C引起了关于电子配对性质的基本问题。这里,我们表明Cu-BHT是具有极低的超流体密度的强相关的非传统超导体。观察到超流体密度的非表现温度依赖性,表明可能存在超导间隙节点。超流体密度的大小远小于传统超导体中的幅度,并且遵循Uemura的相关超导体的关系。这些结果意味着Cu-BHT中的非常规超导源自与Kagome格子的旋转波动相关的电子相关性。

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