Josephson transport in YBa2Cu3O7 weak links created by focused-helium-ion-beam irradiation: Analysis based on diffusive-SNS-junction model
Tetsuro Misawa, Shigeyuki Ishida, Hiroshi Eisaki, Yukinori Morita, Shinichi Ogawa, Chiharu Urano
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 Ic and the IcRn product are well described by diffusive SNS junction models over a wide temperature range. Analyses show that the observed dose dependences of Ic and IcRn cannot be explained solely by variations in the effective Thouless energy ET. 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 Rn 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.
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