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- W1507894727 abstract "The evolution of the high temperature superconductors containing Cu2O plane(s) (known as cuprates) from the Mott insulating state in the parent composition to the superconducting phase with insertion or extraction of electrons (doping) remains an important unsolved problem. This issue is tied to attempts to understand the pairing mechanism of these materials. Current models fall into two categories: (1) the pairing arises due to a bound state formation of the two electrons without the need of any pairing glue and (2) a magnetic mechanism for superconductivity in which the magnetic excitations provide the glue. In scenario 1, the bound state of the electron pairs originates due to the strong electron-electron interactions which can be described by Mott physics. On the other hand, the magnetic mechanism for superconductivity is best described in terms of magnetic excitations which originate from a competing phase with long-range magnetic order (Slater physics) in a weak or intermediate coupling regime. Interestingly, cuprates exhibit two energy scales, low energy coherent spectra near the Fermi level and the high energy incoherent region, which support scenario 1 and 2 respectively and make it very hard to choose the right model to start with." @default.
- W1507894727 created "2016-06-24" @default.
- W1507894727 creator A5088178081 @default.
- W1507894727 date "2021-05-10" @default.
- W1507894727 modified "2023-10-15" @default.
- W1507894727 title "A model of coexistence of antiferromagnetism and superconductivity in electron- and hole-doped cuprates" @default.
- W1507894727 doi "https://doi.org/10.17760/d20000006" @default.
- W1507894727 hasPublicationYear "2021" @default.
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