Combining Topological Hardware and Topological Software: Color-Code Quantum Computing with Topological Superconductor Networks
Daniel Litinski, Markus S. Kesselring, Jens Eisert, Felix von Oppen
DOI 10.1103/PhysRevX.7.031048 · Physical Review X
Active bibliographic source — not scientific approval
Bibliographic access preserves source history; it does not approve extracted materials or validate reported claims. Review warnings on each occurrence separately.
Abstract
We present a scalable architecture for fault-tolerant topological quantum computation using networks of voltage-controlled Majorana Cooper pair boxes and topological color codes for error correction. Color codes have a set of transversal gates which coincides with the set of topologically protected gates in Majorana-based systems, namely, the Clifford gates. In this way, we establish color codes as providing a natural setting in which advantages offered by topological hardware can be combined with those arising from topological error-correcting software for full-fledged fault-tolerant quantum computing. We provide a complete description of our architecture, including the underlying physical ingredients. We start by showing that in topological superconductor networks, hexagonal cells can be employed to serve as physical qubits for universal quantum computation, and we present protocols for realizing topologically protected Clifford gates. These hexagonal-cell qubits allow for a direct implementation of open-boundary color codes with ancilla-free syndrome read-out and logical T gates via magic-state distillation. For concreteness, we describe how the necessary operations can be implemented using networks of Majorana Cooper pair boxes, and we give a feasibility estimate for error correction in this architecture. Our approach is motivated by nanowire-based networks of topological superconductors, but it could also be realized in alternative settings such as quantum-Hall–superconductor hybrids.
Similar papers
Blueprint for fault-tolerant quantum computation with topological qubit arrays
similarity 0.90David Aasen et al.
Source status unknown — claims are unverified
Scalable Fermionic Error Correction in Majorana Surface Codes
similarity 0.90Oscar Viyuela et al. · 2018 · arXiv:1812.08477
Source status unknown — claims are unverified
Physical Architecture for a Universal Topological Quantum Computer based on a Network of Majorana Nanowires
similarity 0.89Maissam Barkeshli & Jay D. Sau · 2015 · arXiv:1509.07135
Source status unknown — claims are unverified
Scalable Designs for Quasiparticle-Poisoning-Protected Topological Quantum Computation with Majorana Zero Modes
similarity 0.88Torsten Karzig et al. · 2016 · arXiv:1610.05289
Source status unknown — claims are unverified
Majorana Superconducting Qubit
similarity 0.87Constantin Schrade & Liang Fu
Source status unknown — claims are unverified
Geometric Quantum Computation and Multiqubit Entanglement with Superconducting Qubits inside a Cavity
similarity 0.87Shi-Liang Zhu et al.
Source status unknown — claims are unverified