Band-like Exact Zero-energy Andreev Bound States and Superconducting Diode Effect in Mixed s+p-wave Josephson Junctions
Abstract
Topological Josephson junctions enable nonreciprocal transport involving Majorana fermions (MFs). Here we examine a topological Josephson junction with mixed s+p-wave pairing, where topological phase transition can be driven by adjusting the ratio between the pairing components. There exist two exact symmetrically positioned zero-energy level crossings for the Andreev-bound states, which can be shifted by external fields, and can be destroyed or recreated in pairs by a time-reversal breaking Zeeman field or inhomogeneities, exhibiting band-like structure. The dependence of the shift on the Zeeman field is linear when the two p-wave d-vectors on both sides are identical while quadratic when they are distinct. Near the topological phase transition, the topological p-wave dominant junctions host MF-induced pronounced superconducting diode effect with high efficiency factor Q up to 30 %, in contrast to the trivial s-wave dominant junctions possessing relatively small Q.
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