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arXiv · 2408.00401

Persistence of small polarons into the superconducting phase of Ba$_{1-x}$K$_x$BiO$_3$

Abstract

Bipolaronic superconductivity is an exotic pairing mechanism proposed for materials like Ba$_{1-x}$K$_x$BiO$_3$ (BKBO); however, conclusive experimental evidence for a (bi)polaron metallic state in this material remains elusive. Here, we combine resonant inelastic x-ray and neutron total scattering techniques with advanced modelling to study the local lattice distortions, electronic structure, and electron-phonon coupling ($e$-ph) in BKBO as a function of doping. Data for the parent compound ($x = 0$) indicates that the electronic gap opens in predominantly oxygen-derived states strongly coupled to a long-range ordered breathing distortion of the oxygen sublattice. Upon doping, short-range breathing distortions and sizable ($e$-ph) coupling persist into the superconducting regime ($x = 0.4$). Comparisons with exact diagonalization and determinant quantum Monte Carlo calculations further support this conclusion. Our results provide compelling evidence that BKBO's metallic phase hosts a liquid of small (bi)polarons derived from local breathing distortions of the lattice, with implications for understanding the low-temperature superconducting instability

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Muntaser Naamneh, Eugenio Paris, Daniel McNally, Yi Tseng, Wojciech R. Pudelko, Dariusz J. Gawryluk, J. Shamblin, Eric OQuinn, Benjamin Cohen-Stead, Ming Shi, Milan Radovic, M. Lang, Thorsten Schmitt, Steven Johnston, Nicholas C. Plumb. 2024-08-01. Persistence of small polarons into the superconducting phase of Ba$_{1-x}$K$_x$BiO$_3$. https://doi.org/10.1103/s3p1-cy1s

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