Impact of electron correlations on two-particle charge response in electron- and hole-doped cuprates
Abhishek Nag, Luciano Zinni, Jaewon Choi, J. Li, Sijia Tu, A. C., Walters, S. Agrestini, S. M. Hayden, Mat\'ias Bejas, Zefeng Lin, H. Yamase,, Kui Jin, M. Garc\'ia-Fern\'andez, J. Fink, Andr\'es Greco, Ke-Jin Zhou

TL;DR
This study investigates how electron correlations affect charge excitations, specifically plasmons, in cuprate superconductors using resonant inelastic x-ray scattering and compares weak and strong correlation models.
Contribution
It demonstrates the hybridized nature of charge fluctuations and compares the effectiveness of RPA and $t$-$J$-$V$ models in describing plasmon dispersions in doped cuprates.
Findings
Electron correlations significantly influence low-energy plasmons.
The $t$-$J$-$V$ model accurately describes plasmon dispersions outside the intra-band continuum.
RPA requires renormalized parameters for quantitative agreement.
Abstract
Estimating many-body effects that deviate from an independent particle approach, has long been a key research interest in condensed matter physics. Layered cuprates are prototypical systems, where electron-electron interactions are found to strongly affect the dynamics of single-particle excitations. It is however, still unclear how the electron correlations influence charge excitations, such as plasmons, which have been variously treated with either weak or strong correlation models. In this work, we demonstrate the hybridised nature of collective valence charge fluctuations leading to dispersing acoustic-like plasmons in hole-doped LaSrCuO and electron-doped LaCeCuO using the two-particle probe, resonant inelastic x-ray scattering. We then describe the plasmon dispersions in both systems, within both the weak mean-field Random Phase…
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