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Dimensionality control and rotational symmetry breaking superconductivity in square-planar layered nickelates
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Dimensionality control and rotational symmetry breaking superconductivity in square-planar layered nickelates
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The interplay between dimensionality and various phases of matter is a central inquiry in condensed matter physics. New phases are often discovered through spontaneously broken symmetry. Understanding the dimensionality of superconductivity in the high-temperature cuprate analogue $-$ layered nickelates and revealing a new symmetry-breaking state are the keys to deciphering the underlying pairing mechanism. Here, we demonstrate the highly-tunable dimensionality and a broken rotational symmetry state in the superconductivity of square-planar layered nickelates. The superconducting state, probed by superconducting critical current and magnetoresistance within superconducting transition under direction-dependent in-plane magnetic fields, exhibits a $C_2$ rotational symmetry which breaks the $C_4$ rotational symmetry of the square-planar lattice. Furthermore, by performing detailed examination of the angular dependent upper critical fields at temperatures down to 0.5 K with high-magnetic pulsed-fields, we observe a crossover from two-dimensional to three-dimensional superconducting states which can be manipulated by the ionic size fluctuations in the rare-earth spacer layer. Such a large degree of controllability is desired for tailoring strongly two/three-dimensional superconductors and navigating various pairing landscapes for a better understanding of the correlation between reduced dimensionality and unconventional pairing. These results illuminate new directions to unravel the high-temperature superconducting pairing mechanism.
Forward citations
Cited by 2 Pith papers
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A Disconnected Superconducting Regime at the Parent Limit of Infinite-Layer Nickelates
Stoichiometric uncapped PrNiO2 shows zero resistance and diamagnetism, defining a narrow superconducting regime at the parent limit that is separated from the known doped dome.
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Superconducting phase diagram of multi-layer square-planar nickelates
Multi-layer square-planar nickelates with n=4–8 nickel-oxygen layers show superconducting signatures at ~10–13 K, extending the nickelate superconducting family beyond infinite-layer compounds.
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