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Tunable superconducting diode effect in a topological nano-SQUID
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abstract
A Josephson diode passes current with zero resistance in one direction but is resistive in the other direction. While such an effect has been observed in several platforms, a large and tunable Josephson diode effect has been rare. Here we report that a simple device consisting of a topological-insulator (TI) nanowire side-contacted by superconductors to form a lateral Josephson junction presents a large diode effect with the efficiency $\eta$ reaching 0.3 when a parallel magnetic field $B_{||}$ is applied. Interestingly, the sign and the magnitude of $\eta$ is tunable not only by $B_{||}$ but also by the back-gate voltage. This diode effect can be understood by modeling the system as a nano-SQUID, in which the top and bottom surfaces of the TI nanowire each form a line junction and $B_{||}$ creates a magnetic flux to thread the SQUID loop. This model further shows that the observed diode effect marks the emergence of topological superconductivity in TI-nanowire-based Josephson junction.
Forward citations
Cited by 2 Pith papers
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Edge dependent Josephson Diode effect in WTe$_{2}$-Based Josephson junction
Edge termination asymmetry in WTe2 nanoribbons produces a magnetic-flux-tunable Josephson diode effect, boosted above 50% efficiency by admixing bulk transport channels.
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Superconducting Diode Effect in Selectively-Grown Topological Insulator based Josephson Junctions
Measurements show a Josephson diode effect with up to 7% rectification in Nb/Bi0.8Sb1.2Te3/Nb junctions, attributed to ballistic topological surface states.
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