Doping-dependence of the electron-phonon coupling in two families of bilayer superconducting cuprates
Yingying Peng, Leonardo Martinelli, Qizhi Li, Matteo Rossi, Matteo, Mitrano, Riccardo Arpaia, Marco Moretti Sala, Qiang Gao, Xuefei Guo,, Gabriella Maria De Luca, Andrew Walters, Abhishek Nag, Andi Barbour, Genda, Gu, Jonathan Pelliciari, Nicholas B. Brookes, Peter Abbamonte

TL;DR
This study investigates how electron-phonon coupling varies with doping in two cuprate families using resonant inelastic x-ray scattering, revealing non-monotonic trends and potential implications for high-temperature superconductivity.
Contribution
It provides the first comparative analysis of doping-dependent electron-phonon coupling in two cuprate families, highlighting non-monotonic behavior and the influence of charge carriers and charge-density waves.
Findings
EPC strength decreases with doping at certain momenta.
EPC exhibits non-monotonic doping dependence at smaller momenta.
Phonon intensity is enhanced near charge-density-wave excitations.
Abstract
While electron-phonon coupling (EPC) is crucial for Cooper pairing in conventional superconductors, its role in high- superconducting cuprates is debated. Using resonant inelastic x-ray scattering at the oxygen -edge, we studied the EPC in BiSrCaCuO (Bi2212) and NdBaCuO (NBCO) at different doping levels ranging from heavily underdoped () to overdoped (). We analyze the data with a localized Lang-Firsov model that allows for the coherent excitations of two phonon modes. While electronic band dispersion effects are non-negligible, we are able to perform a study of the relative values of EPC matrix elements in these cuprate families. In the case of NBCO, the choice of the excitation energy allows us to disentangle modes related to the CuO chains and the CuO planes. Combining the results from the two…
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