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arXiv · 2007.04981

Anharmonic theory of superconductivity in the high-pressure materials

Abstract

Electron-phonon superconductors at high pressures have displayed the highest values of critical superconducting temperature $T_c$ on record, now rapidly approaching room temperature. Despite the importance of high-$P$ superconductivity in the quest for room-temperature superconductors, a mechanistic understanding of the effect of pressure and its complex interplay with phonon anharmonicity and superconductivity is missing, as numerical simulations can only bring system-specific details clouding out key players controlling the physics. Here we develop a minimal model of electron-phonon superconductivity under an applied pressure which takes into account the anharmonic decoherence of the optical phonons. We find that $T_c$ behaves non-monotonically as a function of the ratio $Γ/ω_0$, where $Γ$ is the optical phonon damping and $ω_0$ the optical phonon energy at zero pressure and momentum. Optimal pairing occurs for a critical ratio $Γ/ω_0$ when the phonons are on the verge of decoherence ("diffuson-like" limit). Our framework gives insights into recent experimental observations of $T_c$ as a function of pressure in the complex BCS material TlInTe$_2$.

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Chandan Setty, Matteo Baggioli, Alessio Zaccone. 2021-03-29. Anharmonic theory of superconductivity in the high-pressure materials. https://doi.org/10.1103/physrevb.103.094519

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