4.6 Article Proceedings Paper

Designer non-Abelian anyon platforms: from Majorana to Fibonacci

Journal

PHYSICA SCRIPTA
Volume T164, Issue -, Pages -

Publisher

IOP PUBLISHING LTD
DOI: 10.1088/0031-8949/2015/T164/014006

Keywords

topological quantum computation; Majorana fermions; Fibonacci anyons

Funding

  1. NSF [DMR-1341822]
  2. Alfred P Sloan Foundation
  3. Caltech Institute for Quantum Information and Matter, an NSF Physics Frontiers Center
  4. Gordon and Betty Moore Foundation
  5. Walter Burke Institute for Theoretical Physics at Caltech
  6. Microsoft's Station Q
  7. European Research Council under the European Union's Seventh Framework Programme (FP7) / ERC Project MUNATOP
  8. US-Israel Binational Science Foundation
  9. Minerva Foundation
  10. Direct For Mathematical & Physical Scien
  11. Division Of Materials Research [1341822] Funding Source: National Science Foundation

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The emergence of non-Abelian anyons from large collections of interacting elementary particles is a conceptually beautiful phenomenon with important ramifications for fault-tolerant quantum computing. Over the last few decades the field has evolved from a highly theoretical subject to an active experimental area, particularly following proposals for trapping non-Abelian anyons in 'engineered' structures built from well-understood components. In this short overview we briefly tour the impressive progress that has taken place in the quest for the simplest type of non-Abelian anyon-defects binding Majorana zero modes-and then turn to similar strategies for pursuing more exotic excitations. Specifically, we describe how interfacing simple quantum Hall systems with conventional superconductors yields 'parafermionic' generalizations of Majorana modes and even Fibonacci anyons-the latter enabling fully fault tolerant universal quantum computation. We structure our treatment in a manner that unifies these topics in a coherent way. The ideas synthesized here spotlight largely uncharted experimental territory in the field of quantum Hall physics that appears ripe for discovery.

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