Layer-Resolved Impurity States Reveal Competing Pairing Mechanisms in Trilayer Nickelate Superconductor La$_4$Ni$_3$O$_{10}$
Suyin Zheng, Tao Zhou

TL;DR
This study uses impurity-induced states analysis to differentiate between competing pairing mechanisms in the trilayer nickelate superconductor La$_4$Ni$_3$O$_{10}$, revealing how impurity effects depend on pairing symmetry and layer position.
Contribution
It introduces a detailed theoretical framework to distinguish intra- and interlayer pairing in trilayer nickelates via impurity spectroscopy, highlighting the role of layer-specific impurity effects.
Findings
Interlayer pairing causes partially gapless Fermi surfaces with low-energy LDOS concentrated in outer layers.
Impurity effects vary with pairing symmetry and impurity location, producing distinct resonance behaviors.
Single-impurity spectroscopy can effectively identify the dominant pairing mechanism in trilayer nickelates.
Abstract
Trilayer Ruddlesden-Popper nickelate superconductor has generated considerable interest due to its unconventional superconductivity and complex electronic structure. Notably, features a mixed Ni valence state and an asymmetric trilayer configuration, leading to distinct quasiparticle distributions and local density of states (LDOS) between the inner and outer NiO planes. In this work, we investigate impurity-induced states in using a two-orbital model combined with -matrix formalism, focusing on the contrasting roles of intra- and interlayer pairing channels. Our self-consistent mean-field analysis reveals that interlayer pairing results in partially gapless Fermi surfaces, with unpaired quasiparticles concentrated in the outer layers and a…
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Taxonomy
TopicsIron-based superconductors research · Magnetic and transport properties of perovskites and related materials · Physics of Superconductivity and Magnetism
