English

Topological superconductor from superconducting topological surface states and fault-tolerant quantum computing

Superconductivity 2020-03-27 v1 Quantum Physics

Abstract

The chiral pp-wave superconductor/superfluid in two dimensions (2D) is the simplest and most robust system for topological quantum computation . Candidates for such topological superconductors/superfluids in nature are very rare. A widely believed chiral pp-wave superfluid is the Moore-Read state in the ν=52\nu=\frac{5}2 fractional quantum Hall effect, although experimental evidence are not yet conclusive. Experimental realizations of chiral pp-wave superconductors using quantum anomalous Hall insulator-superconductor hybrid structures have been controversial. Here we report a new mechanism for realizing 2D chiral pp-wave superconductors on the surface of 3D ss-wave superconductors that have a topological band structure and support superconducting topological surface states (SC-TSS), such as the iron-based superconductor Fe(Te,Se). We find that tunneling and pairing between the SC-TSS on the top and bottom surfaces in a thin film or between two opposing surfaces of two such superconductors can produce an emergent 2D time-reversal symmetry breaking chiral topological superconductor. The topologically protected anyonic vortices with Majorana zero modes as well as the chiral Majorana fermion edge modes can be used as a platform for more advantageous non-abelian braiding operations. We propose a novel device for the CNOT gate with six chiral Majorana fermion edge modes, which paves the way for fault-tolerant universal quantum computing.

Keywords

Cite

@article{arxiv.2003.11752,
  title  = {Topological superconductor from superconducting topological surface states and fault-tolerant quantum computing},
  author = {Xi Luo and Yu-Ge Chen and Ziqiang Wang and Yue Yu},
  journal= {arXiv preprint arXiv:2003.11752},
  year   = {2020}
}

Comments

6 pages, 5 figures