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Transport phase diagram and anomalous metallicity in superconducting infinite-layer nickelates. | LitMetric

Transport phase diagram and anomalous metallicity in superconducting infinite-layer nickelates.

Nat Commun

High Field Magnet Laboratory (HFML-FELIX) and Institute for Molecules and Materials, Radboud University, Toernooiveld 7, 6525 ED, Nijmegen, Netherlands.

Published: November 2024

AI Article Synopsis

  • The study investigates whether high-T cuprates and infinite-layer nickelates share similar interactions affecting their normal and superconducting states, highlighting recent advancements in high-quality nickelate crystals.
  • Recent research shows that nickelates have a superconducting dome and comparable transport properties to cuprates, but the normal state behavior in strong magnetic fields needs further exploration.
  • Findings from new NdSrNiO films indicate that the normal-state resistivity in infinite-layer nickelates displays non-Fermi-liquid behavior across various doping levels, suggesting both systems share characteristics of a quantum critical phase despite differences in their charge dynamics.

Article Abstract

Despite obvious similarities in their electronic and crystallographic structures, it remains unclear whether the interactions that shape the normal and superconducting (SC) state properties of high-T cuprates and infinite-layer nickelates (ILNs) have the same origin. This question has been brought into sharper focus with recent studies on ILNs of improved crystallinity that reveal a SC dome of comparable extent and similar transport properties above T as the hole-doped cuprates. The evolution of these properties in the magnetic-field-induced normal state, however, has yet to be determined. Here, we examine the magnetotransport properties of new-generation NdSrNiO films in the T → 0 limit across the phase diagram in fields up to 54 T. This extensive study reveals that the limiting low-T form of the normal-state resistivity in ILNs exhibits non-Fermi-liquid behaviour over an extended doping range inside the SC dome, rather than at a singular quantum critical point. While there are clear differences in the charge dynamics of ILNs and cuprates, most notably in the magnetoresistance, our findings reveal that both systems exhibit anomalous metallicity characteristic of a quantum critical phase.

Download full-text PDF

Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11564705PMC
http://dx.doi.org/10.1038/s41467-024-54135-yDOI Listing

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