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Published on: August 2, 2019
Majorana bound states and nonlocal spin correlations in a quantum wire on an unconventional superconductor
Sho Nakosai1, Jan Carl Budich2, Yukio Tanaka3
1Department of Applied Physics, University of Tokyo, Tokyo 113-8656, Japan.
Abstract:
We study theoretically the proximity effect of a one-dimensional metallic quantum wire (in the absence of spin-orbit interaction) lying on top of an unconventional superconductor. Three different material classes are considered as a substrate: (i) a chiral superconductor in class D with broken time-reversal symmetry and a class DIII superconductor (ii) with and (iii) without a nontrivial Z(2) number. Interestingly, we find degenerate zero energy Majorana bound states at both ends of the wire for all three cases. They are unstable against spin-orbit interaction in case (i), while they are topologically protected by time-reversal symmetry in cases (ii) and (iii). Remarkably, we show that nonlocal spin correlations between the two ends of the wire can be simply controlled by a gate potential in our setup.
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