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Anisotropic Upper Critical Field beyond the Pauli Limit in a Nickelate Superconductor: Evidence for a Quantum Fluctuation Driven State

Xue-Yan Wang, Cheng-Xue Chen, Zi-Ming Mai, Qiang Zhao, Wen-Long Yang, Fang-Hui Zhu, Mei-Ling Yan, Rui-Fen Dou, Chang-Min Xiong, Haiwen Liu, Jia-Cai Nie

DOI 10.1103/mmpn-gl8z · Physical Review Letters

T1

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Abstract

Superconductivity can be destroyed by a magnetic field with an upper bound known as the Pauli limit. Here, we report a large violation of the Pauli limit in both in-plane and perpendicular magnetic fields in La0.8Sr0.2NiO2 infinite-layer superconducting thin films. The critical field Hc2 shows a clear anisotropic behavior and a pronounced upturn at ultralow temperatures, manifesting anisotropic superconductor-metal transition features. Scaling analysis near the T→0 quantum critical point of this transition reveals a quantum Griffiths singularity arising from quenched disorder, hallmarked by a diverging dynamic critical exponent. These quantum Griffiths singularity induced quantum fluctuations provide the origin for the pronounced Hc2 upturn and represent a key intrinsic mechanism for the robust violation of the Pauli limit. Our findings establish a microscopic mechanism where heavy-fermion mass renormalization suppresses orbital pair breaking, enabling disorder-enhanced quantum fluctuations to preserve superconductivity far beyond the Pauli limit.

Source-reported materials — not catalogue approval

FormulaReported Tc (K)Pressure (GPa)Type
La0.8Sr0.2NiO2

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14.5Pressure not reportedonset
La0.8Sr0.2NiO2

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3Pressure not reportedzero_resistance
Nd0.8Sr0.2NiO2

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—Pressure not reportedunknown
La0.82Sr0.18NiO2

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—Pressure not reportedunknown

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