Papers
Topics
Authors
Recent
Search
2000 character limit reached

Josephson transport in YBa2{}_{2}Cu3{}_{3}O7{}_{7} weak links created by focused-helium-ion-beam irradiation: Analysis based on diffusive-SNS-junction model

Published 20 Aug 2026 in cond-mat.supr-con and cond-mat.mes-hall | (2608.20109v1)

Abstract: Fabrication of YBCO weak links by focused helium ion beam irradiation is a promising approach for realizing high-temperature superconducting Josephson junction devices. Although empirical dose-characteristic relationships have been established, the underlying transport mechanisms remain unclear. In this study, we perform a detailed investigation of the transport properties of YBCO weak links fabricated using a helium ion microscope (HIM) and provide a unified phenomenological description of the observed behavior based on the theory of SNS junctions with a diffusive metallic interlayer. We demonstrate that the temperature dependence of the critical current IcI_{\mathrm{c}} and the IcRnI_{\mathrm{c}}R_{\mathrm{n}} product are well described by diffusive SNS junction models over a wide temperature range. Analyses show that the observed dose dependences of IcI_{\mathrm{c}} and IcRnI_{\mathrm{c}}R_{\mathrm{n}} cannot be explained solely by variations in the effective Thouless energy ETE_{\mathrm{T}}. The discrepancy suggests reduced interface transparency and a reduction in the density of states, leading to a decrease in the effective number of conducting channels contributing to transport. This interpretation is also consistent with the observed exponential increase in RnR_{\mathrm{n}} with irradiation dose. These results provide a diffusion-based framework for understanding Josephson transport and guiding junction design in helium-ion-irradiated YBCO weak links.

Summary

No one has generated a summary of this paper yet.

Paper to Video (Beta)

No one has generated a video about this paper yet.

Whiteboard

No one has generated a whiteboard explanation for this paper yet.

Continue Learning

We haven't generated follow-up questions for this paper yet.

Tweets

Sign up for free to view the 1 tweet with 0 likes about this paper.