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Heavily Sr-Doped La2SrNi2O7-δ as a Tetragonal Ruddlesden-Popper Phase at Ambient Pressure

Yuhang Zhang, Xue Ming, Cui-Qun Chen, Wei Chen, Tian-Yi Li, Zhe-Ning Xiang, Qing Li, Bing-hui Ge, Dao-Xin Yao, Xiyu Zhu, Hai-Hu Wen

cond-mat.supr-conarXiv:2609.00542

Abstract

High-temperature superconductivity has been found in bilayer Ruddlesden-Popper (RP) nickelates in bulk samples under high pressure, or in thin films via compressive strain. In the superconducting state, a tetragonal structure with a straight Ni-O-Ni bond along c-axis has been commonly observed, together with the suppression or diminishing of the density-wave orders. Therefore, it remains an open question whether these factors are sufficient for achieving superconductivity at ambient pressure. Here we report the first successful synthesis of heavily Sr-doped La2SrNi2O7-δ under high-pressure and high-temperature (HPHT) conditions with a flux method. X-ray diffraction and scanning transmission electron microscopy (STEM) confirm that the material adopts a tetragonal (I4/mmm) structure with an 180 Ni-O-Ni bond angle along c-axis. Resistance measurements reveal metallic behavior with a low-temperature upturn and no density-wave features are observed. However, neither pressure nor oxygen variation induces superconductivity. Density functional theory calculations indicate that the holes introduced by Sr doping are predominantly doped into the Ni-3dz2 orbital, leading to the appearance of a very large γ pocket on the Fermi surface at ambient pressure and significantly reducing the occupation of the Ni-3dz2 orbital. Combining the experimental observations with theoretical calculations, we attribute the absence of superconductivity to the serious deviation from the half-filling state of the Ni-3dz2 band, which is crucial for the interlayer antiferromagnetic interaction and thus for pairing. Our work unravels important issues for achieving superconductivity in bilayer nickelate system.

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