English

Unconventional superconductivity as a synchronization problem in nuclear oscillator networks

Superconductivity 2020-05-26 v2 Adaptation and Self-Organizing Systems Nuclear Theory

Abstract

We formulate the problem of unconventional dd-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 dd-wave pseudogap ΔPG\Delta_{PG}, due to an effective, short range attractive interaction of dx2y2d_{x^2-y^2} character. Phase coherent, bulk superconductivity, with a dd-wave gap Δ\Delta, is stabilized when the oscillator network is asymptotically entangled in a nearly decoherence-free environment. Phase coherence will in turn be destroyed, at TcT_c, when the thermal noise becomes comparable to the coupling between oscillators, the superfluid density KK. The 2Δ/kBTc2\Delta/k_B T_c ratio is a function of Kuramoto's order parameter, r=1Kc/Kr=\sqrt{1-K_c/K}, for the loss of synchronization at KcK_c, and is much larger than the nonuniversal 2ΔPG/kBT2\Delta_{PG}/k_B T^* ratio, where TT^* is the temperature at which ΔPG\Delta_{PG} is completely destroyed by thermal fluctuations. We discuss our findings in connection to the available data for various unconventionally high-temperature superconductors.

Keywords

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

R2 v1 2026-06-23T15:26:16.647Z