Role of interstitial orbital in a model of infinite-layer nickelates
arXiv:2603.20705 · doi:10.1103/j7n2-vhkt
Abstract
Motivated by recent angle-resolved photoemission spectroscopy (ARPES) experiments on infinite-layer (IL) nickelates, we employ determinant quantum Monte Carlo (DQMC) to study the three-orbital Emery model (- model) coupled to an additional interstitial orbital retaining the three-dimensional dispersion. Our large-scale simulations reveal that: (1) the interstitial -orbital-derived electron pocket is significantly reduced by the strong interaction but persists upon 20\% hole doping, reaching a size comparable to experimental observations; (2) the -orbital dispersion is strongly renormalized by interactions, leading to a weak dependence consistent with ARPES measurements. Furthermore, compared with the conventional three-orbital - model, the -- model exhibits enhanced short-range antiferromagnetic correlations. These results highlight the crucial role of strong correlations and multi-orbital effects in shaping the low-energy electronic structure and many-body correlations in IL nickelates, and demonstrate the necessity of treating interaction-driven many-body physics within a realistic multi-orbital framework.
8 pages, 7 figures