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arXiv · 2211.12015

Possible enhancement of the superconducting $T_c$ due to sharp Kohn-like soft phonon anomalies

Abstract

Phonon softening is a ubiquitous phenomenon in condensed matter systems which is often associated with charge density wave (CDW) instabilities and anharmonicity. The interplay between phonon softening, CDW and superconductivity is a topic of intense debate. In this work, the effects of anomalous soft phonon instabilities on superconductivity are studied based on a recently developed theoretical framework that accounts for phonon damping and softening within the Migdal-Eliashberg theory. Model calculations show that the phonon softening in the form of a sharp dip in the phonon dispersion relation, either acoustic or optical (including the case of Kohn-type anomalies typically associated with CDW), can cause a manifold increase of the electron-phonon coupling constant $\lambda$. This, under certain conditions, which are consistent with the concept of optimal frequency introduced by Bergmann and Rainer, can produce a large increase of the superconducting transition temperature $T_c$. In summary, our results suggest the possibility of reaching high-temperature superconductivity by exploiting soft phonon anomalies restricted in momentum space.

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Cunyuan Jiang, Enrico Beneduce, Matteo Baggioli, Chandan Setty, Alessio Zaccone. 2022-11-22. Possible enhancement of the superconducting $T_c$ due to sharp Kohn-like soft phonon anomalies. https://doi.org/10.1088/1361-648x%2Facbd0a

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