Dynamical structural instability and its implication on the physical properties of infinite-layer nickelates
Abstract
We use first-principles calculations to find that in infinite-layer nickelates NiO, the widely studied tetragonal structure is only dynamically stable for early lanthanide elements = La-Sm. For late lanthanide elements = Eu-Lu, an imaginary phonon frequency appears at point. For those infinite-layer nickelates, condensation of this phonon mode into the structure leads to a more energetically favorable structure that is characterized by an out-of-phase rotation of "NiO square". Special attention is given to two borderline cases: PmNiO and SmNiO, in which both the structure and the structure are local minima and the energy difference between the two structures can be fine-tuned by epitaxial strain. Compared to the structure, NiO in the structure has a substantially reduced Ni bandwidth, a smaller Ni occupancy, a "cleaner" Fermi surface with a lanthanide--derived electron pocket suppressed at point, and a decreased critical to stabilize long-range antiferromagnetic ordering. All these features imply enhanced correlation effects and favor Mott physics. Our work reveals the importance of structure-property relation in infinite-layer nickelates, in particular, the spontaneous "NiO square" rotation provides a tuning knob to render NiO in the structure a closer analogy to superconducting infinite-layer cuprates.
Cite
@article{arxiv.2110.12405,
title = {Dynamical structural instability and its implication on the physical properties of infinite-layer nickelates},
author = {Chengliang Xia and Jiaxuan Wu and Yue Chen and Hanghui Chen},
journal= {arXiv preprint arXiv:2110.12405},
year = {2022}
}
Comments
26 pages and 6 figures