Space-time crystalline order of a high-critical-temperature superconductor with intrinsic Josephson junctions
Abstract
We theoretically demonstrate that the high-critical-temperature superconductor BiSrCaCuO (BSCCO) is a natural candidate for the recently envisioned classical space-time crystal. BSCCO intrinsically forms a stack of Josephson junctions. Under a periodic parametric modulation of the Josephson critical current density, the Josephson currents develop coupled space-time crystalline order, breaking the continuous translational symmetry in both space and time. The modulation frequency and amplitude span a (nonequilibrium) phase diagram for a so-defined spatiotemporal order parameter, which displays rigid pattern formation within a particular region of the phase diagram. Based on our calculations using representative material properties, we propose a laser-modulation experiment to realize the predicted space-time crystalline behavior. Our findings bring new insight into the nature of space-time crystals and, more generally, into nonequilibrium driven condensed matter systems.
Keywords
Cite
@article{arxiv.2012.01387,
title = {Space-time crystalline order of a high-critical-temperature superconductor with intrinsic Josephson junctions},
author = {Reinhold Kleiner and Xianjing Zhou and Eric Dorsch and Xufeng Zhang and Dieter Koelle and Dafei Jin},
journal= {arXiv preprint arXiv:2012.01387},
year = {2021}
}
Comments
12 pages, 7 figures