Electron pairing in the pseudogap state revealed by shot noise in copper-oxide junctions
Abstract
In the quest to understand high-temperature superconductivity in copper oxides, a vigorous debate has been focused on the pseudogap - a partial gap that opens over portions of the Fermi surface in the 'normal' state above the bulk critical temperature (). The pseudogap has been attributed to precursor superconductivity, to the existence of preformed pairs, or to competing orders such as charge-density waves. A direct determination of the charge of carriers as a function of temperature and bias could help resolve among these alternatives. Here, we report measurements of the shot noise of tunneling current in high-quality LaSrCuO/LaCuO/LaSrCuO (LSCO/LCO/LSCO) heterostructures fabricated using atomic-layer-by-layer molecular beam epitaxy, for several doping levels. The data delineate three distinct regions in the bias voltage-temperature () space. Well outside the superconducting gap region, the shot noise agrees quantitatively with independent tunneling of charge-e carriers. Deep within the gap, shot noise is greatly enhanced, reminiscent of multiple Andreev reflections. Starting above and extending to biases much larger than the gap, there is a broad region in which the noise substantially exceeds the expectations of single-charge tunneling, indicating pairing of carriers. Pairs are detectable deep into the pseudogap region of temperature and bias.
Keywords
Cite
@article{arxiv.2012.02673,
title = {Electron pairing in the pseudogap state revealed by shot noise in copper-oxide junctions},
author = {Panpan Zhou and Liyang Chen and Yue Liu and Ilya Sochnikov and Anthony T. Bollinger and Myung-Geun Han and Yimei Zhu and Xi He and Ivan Bozovic and Douglas Natelson},
journal= {arXiv preprint arXiv:2012.02673},
year = {2020}
}
Comments
Author's version of an article published in Nature on 21 August 2019. Link to the published paper: https://www.nature.com/articles/s41586-019-1486-7