Interstitial oxygen order and its competition with superconductivity in LaPrNiO
arXiv:2508.03414 · doi:10.1038/s41563-025-02351-2
Abstract
High-temperature superconductivity in bilayer nickelate LaNiO under pressure has attracted significant interest in condensed matter physics. While early samples exhibited limited superconducting volume fractions, Pr substitution for La enabled bulk superconductivity in polycrystals under pressure and enhanced transition temperatures in thin films at ambient pressure. Beyond rare-earth doping, moderate oxygen or ozone annealing improves superconductivity by mitigating oxygen vacancies, whereas high-pressure oxygen annealing leads to a trivial, non-superconducting metallic state across all pressure regimes. These findings highlight the need to elucidate both the individual and combined effects of Pr doping and oxygen stoichiometry in modulating superconductivity in bilayer nickelates. Here, using multislice electron ptychography and electron energy-loss spectroscopy, we investigate the structural and electronic properties of as-grown LaPrNiO and high-pressure-oxygen-annealed LaPrNiO polycrystals. We find that Pr dopants preferentially occupy outer La sites, effectively eliminating inner-apical oxygen vacancies and ensuring near-stoichiometry in as-grown LaPrNiO that is bulk-superconducting under pressure. In contrast, high-pressure oxygen annealing induces a striped interstitial oxygen order, introducing quasi-1D lattice potentials and excess hole carriers into p-d hybridized orbitals, ultimately suppressing superconductivity. This behavior starkly contrasts with cuprate superconductors, where similar interstitial oxygen ordering enhances superconductivity instead. Our findings reveal a competition between striped interstitial oxygen order and superconductivity in bilayer nickelates, offering key insights into their distinct pairing mechanisms and providing a roadmap for designing more robust superconducting phases.
To appear in Nature Materials (2025)
References in corpus (26)
- Restoring the density-gradient expansion for exchange in solids and surfaces
- Generalized gradient approximation for solids and their surfaces
- Superconductivity near 80 Kelvin in single crystals of La3Ni2O7 under pressure
- Electron ptychography achieves atomic-resolution limits set by lattice vibrations
- High-temperature superconductivity with zero-resistance and strange metal behavior in LaNiO
- Bilayer two-orbital model of LaNiO under pressure
- Visualization of Oxygen Vacancies and Self-doped Ligand Holes in La3Ni2O7-δ
- Possible -wave superconductivity in LaNiO
- The s-Wave Pairing and the Destructive Role of Apical-Oxygen Deficiencies in LaNiO Under Pressure
- Possible high Superconductivity in LaNiO under High Pressure through Manifestation of a Nearly-Half-Filled Bilayer Hubbard Model
- Correlated electronic structure of LaNiO under pressure
- Interlayer Coupling Driven High-Temperature Superconductivity in LaNiO Under Pressure
- Orbital-Dependent Electron Correlation in Double-Layer Nickelate La3Ni2O7
- Bilayer -- Model and Magnetically Mediated Pairing in the Pressurized Nickelate LaNiO
- Ambient-pressure superconductivity onset above 40 K in bilayer nickelate ultrathin films
- Electronic and magnetic excitations in LaNiO
- High- superconductivity by mobilizing local spin singlets and possible route to higher in pressurized LaNiO
- Electronic correlations and partial gap in the bilayer nickelate LaNiO
- Structure responsible for the superconducting state in La3Ni2O7 at high pressure and low temperature conditions
- Pressure-enhanced spin-density-wave transition in double-layer nickelate
- Identification of the superconductivity in bilayer nickelate LaNiO upon 100 GPa
- Pressure-enhanced splitting of density wave transitions in LaNiO
- Structural routes to stabilise superconducting LaNiO at ambient pressure
- Non-Fermi liquid and antiferromagnetic correlations with hole doping in the bilayer two-orbital Hubbard model of LaNiO at zero temperature
- Highly asymmetric superconducting dome and strange metallicity in LaNiO
- First-principles study on Pr-doped Bilayer Nickelate La3Ni2O7
Cited by in corpus (5)
- Superconductivity and Electronic Structures of Nickelate Thin Film Superstructures
- Stabilizing and Tuning Superconductivity in LaNiO Films: Oxygen Recycling Protocol Reveals Hole-Doping Analogue
- Compressive Strain Turns into -Wave Pairing in One-unit-cell LaNiO Thin Film Via Substrate-Induced Hole Doping
- Distinct orbital contributions to electronic and magnetic structures in LaNiO
- Spin Fluctuations in the Rare-Earth Doped Bilayer Nickelates