4.7 Article

Universal Topological Quantum Computation from a Superconductor-Abelian Quantum Hall Heterostructure

Journal

PHYSICAL REVIEW X
Volume 4, Issue 1, Pages -

Publisher

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevX.4.011036

Keywords

Condensed Matter physics; Quantum Information; Strongly Correlated Materials

Funding

  1. NSF [PHYS-1066293, DMR-1341822, DMR-MPS1006549, DMR-0748925, DMR-1101912]
  2. Alfred P. Sloan Foundation
  3. Sherman Fairchild Foundation
  4. DARPAQuEST program
  5. AFOSR [FA9550-10-1-0524]
  6. Israel Science Foundation
  7. Paul and Tina Gardner Fund for the Weizmann-TAMU Collaboration
  8. U.S.-Israel Binational Science Foundation
  9. Minerva Foundation
  10. Microsoft Research Station Q
  11. Caltech Institute for Quantum Information and Matter
  12. NSF Physics Frontiers Center
  13. Gordon and Betty Moore Foundation
  14. Direct For Mathematical & Physical Scien [1101912] Funding Source: National Science Foundation
  15. Direct For Mathematical & Physical Scien
  16. Division Of Materials Research [0748925] Funding Source: National Science Foundation
  17. Division Of Materials Research [1101912] Funding Source: National Science Foundation
  18. Division Of Materials Research
  19. Direct For Mathematical & Physical Scien [1006549] Funding Source: National Science Foundation
  20. Division Of Physics
  21. Direct For Mathematical & Physical Scien [1125565] Funding Source: National Science Foundation

Ask authors/readers for more resources

Non-Abelian anyons promise to reveal spectacular features of quantum mechanics that could ultimately provide the foundation for a decoherence-free quantum computer. A key breakthrough in the pursuit of these exotic particles originated from Read and Green's observation that the Moore-Read quantum Hall state and a ( relatively simple) two-dimensional p + ip superconductor both support so-called Ising non-Abelian anyons. Here, we establish a similar correspondence between the Z(3) Read-Rezayi quantum Hall state and a novel two-dimensional superconductor in which charge-2e Cooper pairs are built from fractionalized quasiparticles. In particular, both phases harbor Fibonacci anyons that-unlike Ising anyons-allow for universal topological quantum computation solely through braiding. Using a variant of Teo and Kane's construction of non-Abelian phases from weakly coupled chains, we provide a blueprint for such a superconductor using Abelian quantum Hall states interlaced with an array of superconducting islands. Fibonacci anyons appear as neutral deconfined particles that lead to a twofold ground-state degeneracy on a torus. In contrast to a p + ip superconductor, vortices do not yield additional particle types, yet depending on nonuniversal energetics can serve as a trap for Fibonacci anyons. These results imply that one can, in principle, combine well-understood and widely available phases of matter to realize non- Abelian anyons with universal braid statistics. Numerous future directions are discussed, including speculations on alternative realizations with fewer experimental requirements.

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