Inspired by the striking discovery of metastable superconductivity in K3C60 at 100K, far above Tc=20K, we discuss possible mechanisms for long-lived, photo-induced superconductivity. Starting from a model of optically-driven Raman phonons coupled to inter-band electronic transitions, we develop a microscopic mechanism for photo-controlling the pairing interaction. Leveraging this mechanism, we first investigate long-lived superconductivity arising from the thermodynamic metastable trapping of the driven phonon. We then propose an alternative route, where the superconducting gap created by an optical drive leads to a dynamical bottleneck in the equilibration of quasi-particles. We conclude by discussing implications of both scenarios for experiments that can be used to discriminate between them. Our work provides falsifiable explanations for the nanosecond-scale photo-induced superconductivity found in K3C60, while simultaneously offering a theoretical basis for exploring metastable superconductivity in other quantum materials.
@article{arxiv.2303.15355,
title = {Metastable Photo-Induced Superconductivity far above $T_{\textrm{c}}$},
author = {Sambuddha Chattopadhyay and Christian J. Eckhardt and Dante M. Kennes and Michael A. Sentef and Dongbin Shin and Angel Rubio and Andrea Cavalleri and Eugene A. Demler and Marios H. Michael},
journal= {arXiv preprint arXiv:2303.15355},
year = {2024}
}