English

Hole distribution and self-doping enhanced electronic correlation in hole-doped infinite-layer nickelates

Strongly Correlated Electrons 2025-07-15 v1 Superconductivity

Abstract

The minimal model for infinite-layer nickelates remains under debate, particularly regarding the hybridization between itinerant interstitial-ss and the correlated Ni-3dx2y2d_{x^2-y^2} orbitals, as well as the interaction between dx2y2d_{x^2-y^2} and other 3d3d orbitals. Additionally, how the doped holes in La1x_{1-x}Srx_xNiO2_2 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 La1x_{1-x}Srx_xNiO2_2 at various doping levels. We find that, unlike the expectation from a rigid band shift, holes are equally distributed to Ni-3dx2y2d_{x^2-y^2} and interstitial-ss orbitals. The role of interstitial-ss orbital is further confirmed from the renormalization of Ni-3dx2y2d_{x^2-y^2} band, for which the coupling between interstitial-ss and Ni-3dx2y2d_{x^2-y^2} 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-ss orbital in the normal state of La1x_{1-x}Srx_xNiO2_2 acts as charge donator enhancing the correlation of Ni-3dx2y2d_{x^2-y^2} 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