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Unrelated BCS-like pairing pseudogap and critical superconducting transition temperature in various cuprate compounds

S. DzhumanovInstitute of Nuclear Physics, Academy of Sciences of Uzbekistan, Ulugbek, Tashkent 100214, UzbekistanE.X. KarimboevInstitute of Nuclear Physics, Academy of Sciences of Uzbekistan, Ulugbek, Tashkent 100214, UzbekistanDilshat DjumanovInstitute of Nuclear Physics, Academy of Sciences of Uzbekistan, Ulugbek, Tashkent 100214, Uzbekistan
Modern Physics Letters Bjournal2018en
ABI

Аннотация

The smooth evolution of the energy gap observed in the tunneling and angle-resolved photoemission spectra (ARPES) of high-[Formula: see text] cuprates with lowering the temperature from a pseudogap state above the critical temperature [Formula: see text] to a superconducting state below [Formula: see text], has been poorly interpreted as the evidence that the pseudogap must have the same origin as the superconducting order parameter, and therefore, must be related to [Formula: see text]. We argue that such an explanation of the tunneling gap and ARPES data is misleading. We show that the BCS-like energy gap (or pseudogap) opening in the electronic excitation spectrum of underdoped-to-overdoped cuprates at a characteristic temperature [Formula: see text] and the true superconducting order parameter appearing only at [Formula: see text] are unrelated. The superconducting phenomenon in unconventional cuprate superconductors is fundamentally different from the BCS-like pairing of fermionic quasiparticles, and the superconducting transition temperature [Formula: see text] is not determined by the BCS-like gap formation. The unusual superconducting order parameter in these high-[Formula: see text] materials appears at [Formula: see text] and coexists with the BCS-like gap (or pseudogap) below [Formula: see text].

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