English

Josephson coupling in high-T$_c$ superconducting junctions using ultra-thin BaTiO$_3$ barriers

Superconductivity 2020-09-23 v1

Abstract

We study the electrical transport of vertically-stacked Josephson tunnel junctions using GdBa2_2Cu3_3O7d_{7-d} electrodes and a BaTiO3_3 barrier with thicknesses between 1 nm and 3 nm. The junctions with an area of 20 mm x 20 mm were fabricated combining optical lithography and ion etching using GdBa2_2Cu3_3O7d_{7-d} (16 nm) / BaTiO3_3 (1 - 3 nm) / GdBa2_2Cu3_3O7d_{7-d} (16 nm) trilayers growth by sputtering on (100) SrTiO3_3. Current-voltage measurements at low temperatures show a Josephson coupling for junctions with BaTiO3_3 barriers of 1 nm and 2 nm. Reducing the barrier thickness bellow a critical thickness seems to suppress the ferroelectric nature of the BaTiO3_3. The Josephson coupling temperature is strongly reduced for increasing barrier thicknesses, which may be related to the suppression of the superconducting critical temperature in the bottom GdBa2_2Cu3_3O7d_{7-d} due to stress. The Josephson energies at 12 K are of \approx 1.5 mV and \approx 7.5 mV for BaTiO3_3 barriers of 1 nm and 2 nm. Fraunhofer patterns are consistent with fluctuations in the critical current due to structural inhomogeneities in the barriers. Our results are promising for the development of Josephson junctions using high-Tc_c electrodes with energy gaps much higher than those usually present in conventional low-temperature superconductors.

Keywords

Cite

@article{arxiv.2005.01236,
  title  = {Josephson coupling in high-T$_c$ superconducting junctions using ultra-thin BaTiO$_3$ barriers},
  author = {H. Navarro and M. Sirena and Jeehoon Kim and N. Haberkorn},
  journal= {arXiv preprint arXiv:2005.01236},
  year   = {2020}
}
R2 v1 2026-06-23T15:16:50.042Z