Nearly Isotropic Vortex Solid in (La,Pr)3Ni2O7 Thin Films
Yaolong Bian, Yaqi Chen, Heng Wang, Guangdi Zhou, Fei Peng, Zichen Lv, Jiaqiang Cai, Yifan Chen, Wenjie Meng, Ze Wang, Haoliang Huang, Daohua Zhang, Mingliang Tian, Jinfeng Jia, Qi-kun Xue, Zhuoyu Chen, Jinglei Zhang
Abstract
The discovery of superconductivity in bulk bilayer nickelates has established a new platform for exploring high-Tc superconductivity beyond the cuprates. The role of the Ni 3dz2-derived γ band in the superconductivity of bilayer nickelates remains unresolved. By performing simultaneous resistance and diamagnetism measurements on (La,Pr)3Ni2O7 thin films, we map the vortex melting phase diagram for both in-plane and out-of-plane magnetic fields. For H c, the geometric confinement effect gives rise to pancake vortices. Remarkably, the anisotropy parameter of the vortex melting field γHm Hmab/Hmc decreases monotonically with decreasing temperature and approaches unity at low temperatures. Within the anisotropic Ginzburg--Landau scaling, Hmab/Hmc = ρsab/ρsc tracks the superfluid-density anisotropy. Such a vortex solid implies a nearly isotropic superfluid density, which is irreconcilable with the strictly two-dimensional 3dx2-y2-derived bands, but naturally explained by a substantial interlayer superfluid contribution from the 3dz2-derived γ band. Our results provide thermodynamic evidence for a substantial contribution of the γ band to superconductivity in bilayer nickelate thin films.
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