Marginal-Fermi-Liquid-like Behavior without Pseudogap in Infinite-Layer Nickelates
Abstract
Pseudogap formation, strange-metal behavior and unconventional superconductivity are closely intertwined in hole-doped cuprates, yet their relationship remains unresolved. Infinite-layer nickelates offer a distinct 3d9-derived platform to address this question by combining a cuprate-like Ni dx2-y2 Fermi surface with multiband electronic degrees of freedom. Here we use angle-resolved photoemission spectroscopy to resolve the low-energy spectral function of superconducting La0.8Ca0.2NiO2 and parent LaNiO2 thin films. In La0.8Ca0.2NiO2, the electronic self-energy Im Sigma(omega) is approximately linear in energy and its slope increases from (pi/2, pi/2) to (pi, 0), revealing momentum-dependent marginal-Fermi-liquid-like scattering. Both films show a progressive suppression of low-energy spectral weight from the diagonal direction toward (pi, 0), with stronger suppression in parent LaNiO2. However, finite Fermi-level spectral weight persists around the entire Fermi surface, with no leading-edge shift or back-bending indicative of pseudogap formation in either the electron pocket or the cuprate-like hole band. Our results demonstrate that momentum-selective correlations and marginal-Fermi-liquid-like scattering can occur without a detectable cuprate-like pseudogap, providing a benchmark for identifying the essential normal-state electronic ingredients of high-temperature superconductivity.
Cite
@article{arxiv.2607.16852,
title = {Marginal-Fermi-Liquid-like Behavior without Pseudogap in Infinite-Layer Nickelates},
author = {Yu Fan and Zhitong An and Xiang Ding and Xingtian Sun and Yutong Chen and Zhihui Chen and Shenglin Tang and Chihao Li and Jiahao Ye and Timur Kim and Haichao Xu and Rui Peng and Donglai Feng},
journal= {arXiv preprint arXiv:2607.16852},
year = {2026}
}
Comments
16 pages, 5 figures