arXiv · 2406.12133
Universal Planckian relaxation in the strange metal state of the cuprates
Abstract
A major puzzle in high-$T_{\rm c}$ superconductivity is the origin of the ``Planckian'' relaxation rate $1/\tau$ underlying the linear-in-temperature resistivity in the strange-metal state, which persists up to very high temperatures. Implicit in theoretical discussions is the assumption that $1/\tau$ must be universal. Experimentally, it is unclear, however, how such universality can be reconciled with the observed strong doping dependence of the resistivity over a wide doping range. We show, through an analysis of a large body of optical conductivity and electrical resistivity data, that a universal $1/\tau$ requires only that the square optical plasma frequency $\omega_{\rm opt}^2(p)$ scales linearly with $p$ across the entire doping range, as is observed experimentally. We further argue that this can be understood via a Gutzwiller factor in doped Mott insulators of the form proposed by Anderson [\emph{Science} \textbf{235}, 1196 (1987)].
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A. Shekhter, B. J. Ramshaw, M. K. Chan, N. Harrison. 2024-06-17. Universal Planckian relaxation in the strange metal state of the cuprates. https://doi.org/10.1038/s41467-026-75673-7
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