Unconventional superconductivity as a synchronization problem in nuclear oscillator networks
Abstract
We formulate the problem of unconventional wave superconductivity, with phase fluctuations, pseudogap phenomenon, and local Cooper pairs, in terms of a synchronization problem in random, quantum dissipative, elasto-nuclear oscillator networks. The nodes of the network correspond to {\it localized, collective quadrupolar vibrations} of nuclei-like, elastic inhomogeneities embedded in a dissipative medium. Electrons interacting with such vibrations form local Cooper pairs, with a superfluid wave pseudogap , due to an effective, short range attractive interaction of character. Phase coherent, bulk superconductivity, with a wave gap , is stabilized when the oscillator network is asymptotically entangled in a nearly decoherence-free environment. Phase coherence will in turn be destroyed, at , when the thermal noise becomes comparable to the coupling between oscillators, the superfluid density . The ratio is a function of Kuramoto's order parameter, , for the loss of synchronization at , and is much larger than the nonuniversal ratio, where is the temperature at which is completely destroyed by thermal fluctuations. We discuss our findings in connection to the available data for various unconventionally high-temperature superconductors.
Cite
@article{arxiv.2005.04713,
title = {Unconventional superconductivity as a synchronization problem in nuclear oscillator networks},
author = {V. Velasco and M. B. Silva Neto},
journal= {arXiv preprint arXiv:2005.04713},
year = {2020}
}
Comments
8 pages, 6 figures