Explanation of Non-linear In-Plane Resistivity and Hall Coefficient in the Normal State of Cuprates: Polaronic Approach View Full Text


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Article Info

DATE

2018-06

AUTHORS

Orifjon Ganiev, Azamat Elmurodov

ABSTRACT

We present a theoretical study of the in-plane resistivity ρab(T) and Hall coefficient RH(T) within the polaronic model and precursor pairing scenario by considering a two-component charge carrier picture in the normal state of high-temperature superconducting cuprates (HTSC). Here, we use a Boltzmann-equation approach and extended BCS-like model to compute ρab(T) and RH(T) in the τ-approximation. The opening of the pseudogap (PG) in the normal state of the cuprates should affect their transport properties. We have found that the transition to the PG regime and the effective conductivity of charge carriers in the normal state are responsible for the pronounced non-linear temperature dependence of ρab and RH. With the two-component model analysis, we conclude that the opening of the BCS-like PG, while the non-linear temperature dependence of ρab and RH could be understood as a consequence of pairing fluctuations in the PG state of cuprate superconductors. The calculated results for ρab(T) and RH(T) were compared with the experimental data obtained for various hole-doped cuprates. For all the considered cases, a good quantitative agreement was found between theory and experimental data. We also show that the energy scales of the binding energies of charge carriers are identified by PG crossover temperature on the cuprate phase diagram. More... »

PAGES

1715-1726

Identifiers

URI

http://scigraph.springernature.com/pub.10.1007/s10948-017-4398-5

DOI

http://dx.doi.org/10.1007/s10948-017-4398-5

DIMENSIONS

https://app.dimensions.ai/details/publication/pub.1092893697


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