English

Tunable disorder and localization in the rare-earth nickelates

Materials Science 2019-05-08 v1 Strongly Correlated Electrons

Abstract

The rare-earth nickelates are a rich playground for transport properties, known to host non-Fermi liquid character, resistance saturation and metal-insulator transitions. We report a study of transport in LaNiO3 in the presence of tunable disorder induced by irradiation. While pristine LaNiO3 samples are metallic, highly irradiated samples show insulating behaviour at all temperatures. Using irradiation fluence as a tuning handle, we uncover an intermediate region hosting a metal-insulator transition. This transition falls within the Mott-Ioffe-Regel regime wherein the mean free path is comparable to lattice spacing. In the high temperature metallic regime, we find a transition from non-Fermi liquid to a Fermi-liquid-like character. On the insulating side of the metal-insulator transition, we find behaviour that is consistent with weak localization. This is reflected in magnetoresistance that scales with the square of the field and in resistivity. In the highly irradiated insulating samples, we find good agreement with variable range hopping, consistent with Anderson localization. We find qualitatively similar behaviour in thick PrNiO3 films as well. Our results demonstrate that ion irradiation can be used to tailor transport, serving as an excellent tool to study the physics of localization.

Keywords

Cite

@article{arxiv.1806.07986,
  title  = {Tunable disorder and localization in the rare-earth nickelates},
  author = {Changan Wang and Ching-Hao Chang and Angus Huang and Pei-Chun Wang and Ping-Chun Wu and Lin Yang and Chi Xu and Parul Pandey and Min Zeng and Roman Böttger and Horng-Tay Jeng and Yu-Jia Zeng and Manfred Helm and Ying-Hao Chu and R. Ganesh and Shengqiang Zhou},
  journal= {arXiv preprint arXiv:1806.07986},
  year   = {2019}
}

Comments

14 pages, 4 figures