English

Limits to the strain engineering of layered square-planar nickelate thin films

Materials Science 2023-03-20 v1 Strongly Correlated Electrons Superconductivity

Abstract

The layered square-planar nickelates, Ndn+1_{n+1}Nin_{n}O2n+2_{2n+2}, are an appealing system to tune the electronic properties of square-planar nickelates via dimensionality; indeed, superconductivity was recently observed in Nd6_{6}Ni5_{5}O12_{12} thin films. Here, we investigate the role of epitaxial strain in the competing requirements for the synthesis of the n=3n=3 Ruddlesden-Popper compound, Nd4_{4}Ni3_{3}O10_{10}, and subsequent reduction to the square-planar phase, Nd4_{4}Ni3_{3}O8_{8}. We synthesize our highest quality Nd4_{4}Ni3_{3}O10_{10} films under compressive strain on LaAlO3_{3} (001), while Nd4_{4}Ni3_{3}O10_{10} on NdGaO3_{3} (110) exhibits tensile strain-induced rock salt faults but retains bulk-like transport properties. A high density of extended defects forms in Nd4_{4}Ni3_{3}O10_{10} on SrTiO3_{3} (001). Films reduced on LaAlO3_{3} become insulating and form compressive strain-induced cc-axis canting defects, while Nd4_{4}Ni3_{3}O8_{8} films on NdGaO3_{3} are metallic. This work provides a pathway to the synthesis of Ndn+1_{n+1}Nin_{n}O2n+2_{2n+2} thin films and sets limits on the ability to strain engineer these compounds via epitaxy.

Keywords

Cite

@article{arxiv.2302.14283,
  title  = {Limits to the strain engineering of layered square-planar nickelate thin films},
  author = {Dan Ferenc Segedin and Berit H. Goodge and Grace A. Pan and Qi Song and Harrison LaBollita and Myung-Chul Jung and Hesham El-Sherif and Spencer Doyle and Ari Turkiewicz and Nicole K. Taylor and Jarad A. Mason and Alpha T. N'Diaye and Hanjong Paik and Ismail El Baggari and Antia S. Botana and Lena F. Kourkoutis and Charles M. Brooks and Julia A. Mundy},
  journal= {arXiv preprint arXiv:2302.14283},
  year   = {2023}
}