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Scalable designs for quasiparticle-poisoning-protected topological quantum computation with Majorana zero modes

Torsten KarzigChristina KnappRoman M. LutchynParsa BondersonMatthew B. HastingsChetan NayakJason AliceaKarsten FlensbergStephan PluggeYuval OregC. M. MarcusMichael Freedman

Abstract

We present designs for scalable quantum computers composed of qubits encoded in aggregates of four or more Majorana zero modes, realized at the ends of topological superconducting wire segments that are assembled into superconducting islands with significant charging energy. Quantum information can be manipulated according to a measurement-only protocol, which is facilitated by tunable couplings between Majorana zero modes and nearby semiconductor quantum dots. Our proposed architecture designs have the following principal virtues: (1) the magnetic field can be aligned in the direction of all of the topological superconducting wires since they are all parallel; (2) topological T junctions are not used, obviating possible difficulties in their fabrication and utilization; (3) quasiparticle poisoning is abated by the charging energy; (4) Clifford operations are executed by a relatively standard measurement: detection of corrections to quantum dot energy, charge, or differential capacitance induced by quantum fluctuations; (5) it is compatible with strategies for producing good approximate magic states.

Topological Materials and PhenomenaGraphene research and applicationsQuantum many-body systemsMAJORANAPhysicsQuasiparticleQuantum computerQubitTopology (electrical circuits)Quantum informationSuperconductivityQuantumQuantum mechanics

Funding

  • National Science Foundation
  • Gordon and Betty Moore Foundation
  • California Institute of Technology
  • Aspen Center for Physics
  • Villum Fonden
  • National Research Foundation
  • Deutsche Forschungsgemeinschaft
  • Danmarks Grundforskningsfond
  • Israel Science Foundation
  • Seventh Framework Programme
  • Walter Burke Institute for Theoretical Physics
  • Institute for Quantum Information and Matter, California Institute of Technology
  • European Research Council
  • Division of Materials Research
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