Superconductive coupling and Josephson diode effect in selectively-grown topological insulator based three-terminal junctions
Abstract
The combination of an ordinary s-type superconductor with three-dimensional topological insulators creates a promising platform for fault-tolerant topological quantum computing circuits based on Majorana braiding. The backbone of the braiding mechanism are three-terminal Josephson junctions. It is crucial to understand the transport in these devices for further use in quantum computing applications. We present low-temperature measurements of topological insulator-based three-terminal Josephson junctions fabricated by a combination of selective-area growth of $\mathrm{Bi_{0.8}Sb_{1.2}Te_3}$ and shadow mask evaporation of Nb. This approach allows for the in-situ fabrication of Josephson junctions with an exceptional interface quality, important for the study of the proximity-effect. We map out the transport properties of the device as a function of bias currents and prove the coupling of the junctions by the observation of a multi-terminal geometry induced diode effect. We find good agreement of our findings with a resistively and capacitively shunted junction network model.
- Publication:
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arXiv e-prints
- Pub Date:
- October 2024
- DOI:
- arXiv:
- arXiv:2410.19311
- Bibcode:
- 2024arXiv241019311B
- Keywords:
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- Condensed Matter - Mesoscale and Nanoscale Physics
- E-Print:
- 9 pages, 5 figures, 6 pages supplemental material including 7 figures