Ultimate speed of the supercurrent and its pairing mechanism
Abstract
Recently, the room-temperature superconductor (RTSC) was discovered as a two-dimensional (2D) square lattice made of a metal wherein positive charges, i.e. holes, were heavily concentrated. The experimental result for the critical magnetic field was fully consistent with the view on the RTSC that its lattice unit -- a metal island -- is filled with the Slater's atoms. Each Slater's atom has the expanded diameter of 14.5 nm in order to have perfect diamagnetism with the magnitude corresponding to a single flux quantum . Its expanded orbit is associated with the fine structure constant . In this paper, another important critical value -- the critical current -- is reported. It was found that the supercurrent has achieved the ultimate speed of matter, i.e., the speed of light, . Beginning with a warm-up exercise for the Bohr's atom, how the Slater's atom is formed and why the appears are shown. These considerations lead to a simple view on the pairing mechanism of superconductivity, which also gives an ample indication of the most mysterious physical number . Finally, it is shown that the proposed pairing mechanism in terms of London's canonical momentum naturally generates the perfect diamagnetic of the Slater's atom, and the superconducting energy gap is predicted.
Keywords
Cite
@article{arxiv.2211.02659,
title = {Ultimate speed of the supercurrent and its pairing mechanism},
author = {N. Zen},
journal= {arXiv preprint arXiv:2211.02659},
year = {2022}
}
Comments
13 pages, 4 figures + appendix