Hole distribution and self-doping enhanced electronic correlation in hole-doped infinite-layer nickelates
Abstract
The minimal model for infinite-layer nickelates remains under debate, particularly regarding the hybridization between itinerant interstitial- and the correlated Ni-3 orbitals, as well as the interaction between and other orbitals. Additionally, how the doped holes in LaSrNiO are distributed among different orbitals remain unresolved. Motivated by recent angle resolved photoemission spectroscopy (ARPES) experiments, we theoretically study the electronic structure of infinite-layer LaSrNiO at various doping levels. We find that, unlike the expectation from a rigid band shift, holes are equally distributed to Ni-3 and interstitial- orbitals. The role of interstitial- orbital is further confirmed from the renormalization of Ni-3 band, for which the coupling between interstitial- and Ni-3 exerts a non-negligible impact on the orbital-selective renormalization observed in ARPES. We also discuss the implication of our results to the single-band model, where the interstitial- orbital in the normal state of LaSrNiO acts as charge donator enhancing the correlation of Ni-3 by increasing its concentration close to half-filling.
Keywords
Cite
@article{arxiv.2507.10364,
title = {Hole distribution and self-doping enhanced electronic correlation in hole-doped infinite-layer nickelates},
author = {Hongbin Qu and Guang-Ming Zhang and Gang Li},
journal= {arXiv preprint arXiv:2507.10364},
year = {2025}
}
Comments
6 pages, 3 figures