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May 17, 2026Acta Physica Polonica B0 citationsOpen Access

Fermiology, Charge Transfer Energy, and Robust Paramagnons in High-\ (T_ c\) Cuprate Superconductors

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MFM. Fidrysiak

Key Points

  • The study aims to unravel the connection between microscopic parameters and paramagnon dynamics in high-temperature superconductors.
  • Utilized Hubbard and t-J-U models to analyze CuO2 planes.
  • Related paramagnon energies to fermiology and charge transfer energy using empirical values.
  • Examined magnetic dynamics in Bi-cuprate representatives with multiple CuO2 planes.
  • Calculated paramagnon energies agreed with experimental values within a 6% margin.
  • Variations in the parameters r and ΔCT showed opposing effects on paramagnon energy.
  • The study provides insights into controlling robust paramagnon physics in strongly-correlated systems.

Abstract

Copper-oxide high-temperature (high-\ (T ₂\) ) superconductors host robust paramagnon excitations whose propagation energies are insensitive to hole concentration and correlate with maximal measured superconducting transition temperatures. Given variation of electronic structure across (and within) cuprate families, elucidation of the relationship between microscopic parameters relevant to high-\ (T ₂\) superconductivity and paramagnon dynamics remains a key challenge to theory. Employing canonical Hubbard and \ (t\) –\ (J\) –\ (U\) models of a CuO\ (₂\) plane, we relate robust paramagnon energies to high-\ (T ₂\) fermiology (via the ratio \ (r t^ /|t|\) of next-nearest- to nearest-neighbor hopping integrals) and charge transfer energy, \ (₂ₓ\). It is shown that variation of \ (r\) and \ (₂ₓ\) between materials has an opposite effect on paramagnon energy, rationalizing comparable bandwidth of magnetic excitations across multiple cuprates. Utilizing empirical values of \ (r\) and \ (₂ₓ\) as input to theory, we address magnetic dynamics in Bi-cuprate family representatives with up to three CuO\ (₂\) planes, and demonstrate quantitative (within \ (6\%\) margin) agreement of calculated paramagnon energies with experiment. Our work offers a route toward quantitative control of robust paramagnon physics in strongly-correlated electron systems. Abstract Published by the Jagiellonian University 2026 authors

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Cite This Study

M. Fidrysiak (2026) studied this question.

synapsesocial.com/papers/6a095b1b7880e6d24efe0e02https://doi.org/10.5506/aphyspolb.57.5-a14
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