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Topological Quantum Computing
Quantum Simulation
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Chiral to helical Majorana fermion transition in a p-wave superconductor
arXiv
Authors: Haiping Hu, Indubala I. Satija, Erhai Zhao
Year
2018
Paper ID
22743
Status
Preprint
Abstract Read
~2 min
Abstract Words
175
Citations
N/A
Abstract
Chiral and helical Majorana edge modes are two archetypal gapless excitations of two-dimensional topological superconductors. They belong to superconductors from two different Altland-Zirnbauer symmetry classes characterized by mathbb{Z} and mathbb{Z}2 topological invariant respectively. It seems improbable to tune a pair of co-propagating chiral edge modes to counter-propagate without symmetry breaking. Here we show that such a direct topological transition is in fact possible, provided the system possesses an additional symmetry mathcal{O} which changes the bulk topological invariant to mathbb{Z}oplus mathbb{Z} type. A simple model describing the proximity structure of a Chern insulator and a px-wave superconductor is proposed and solved analytically to illustrate the transition between two topologically nontrivial phases. The weak pairing phase has two chiral Majorana edge modes, while the strong pairing phase is characterized by mathcal{O}-graded Chern number and hosts a pair of counter-propagating Majorana fermions. The bulk topological invariants and edge theory are worked out in detail. Implications of these results to topological quantum computing based on Majorana fermions are discussed.
Why This Paper Matters
- This paper contributes to the Quantum Simulation research area in the Quantum Articles archive.
- It adds a 2018 reference point for readers tracking recent quantum research.
- Chiral and helical Majorana edge modes are two archetypal gapless excitations of two-dimensional topological superconductors.
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