English

Reconstructing the polar interface of infinite-layer nickelate thin films

Superconductivity 2023-04-12 v1 Materials Science

Abstract

Nickel-based superconductors provide a long-awaited experimental platform to explore possible cuprate-like superconductivity. Despite similar crystal structure and dd electron filling, these systems exhibit several differences. Nickelates are the most polar layered oxide superconductor, raising questions about the interface between substrate and thin film -- thus far the only sample geometry to successfully stabilize superconductivity. We conduct a detailed experimental and theoretical study of the prototypical interface between Nd1x_{1-x}Srx_xNiO2_2 and SrTiO3_3. Atomic-resolution electron energy loss spectroscopy in the scanning transmission electron microscope reveals the formation of a single intermediate Nd(Ti,Ni)O3_3 layer. Density functional theory calculations with a Hubbard UU term show how the observed structure alleviates the strong polar discontinuity. We explore effects of oxygen occupancy, hole doping, and cation structure to disentangle the contributions of each for reducing interface charge density. Resolving the nontrivial interface structure will be instructive for future synthesis of nickelate films on other substrates and in vertical heterostructures.

Keywords

Cite

@article{arxiv.2201.03613,
  title  = {Reconstructing the polar interface of infinite-layer nickelate thin films},
  author = {Berit H. Goodge and Benjamin Geisler and Kyuho Lee and Motoki Osada and Bai Yang Wang and Danfeng Li and Harold Y. Hwang and Rossitza Pentcheva and Lena F. Kourkoutis},
  journal= {arXiv preprint arXiv:2201.03613},
  year   = {2023}
}