Repetition Cat Qubits for Fault-Tolerant Quantum Computation
Abstract
We present a 1D repetition code based on the so-called cat qubits as a viable approach toward hardware-efficient universal and fault-tolerant quantum computation. The cat qubits that are stabilized by a two-photon driven-dissipative process exhibit a tunable noise bias where the effective bit-flip errors are exponentially suppressed with the average number of photons. We propose a realization of a set of gates on the cat qubits that preserve such a noise bias. Combining these base qubit operations, we build, at the level of the repetition cat qubit, a universal set of fully protected logical gates. This set includes single-qubit preparations and measurements, uc(not), controlled-uc(not), and controlled-controlled-uc(not) (Toffoli) gates. Remarkably, this construction avoids the costly magic state preparation, distillation, and injection. Finally, all required operations on the cat qubits could be performed with slight modifications of existing experimental setups.
- Publication:
-
Physical Review X
- Pub Date:
- October 2019
- DOI:
- 10.1103/PhysRevX.9.041053
- arXiv:
- arXiv:1904.09474
- Bibcode:
- 2019PhRvX...9d1053G
- Keywords:
-
- Quantum Physics;
- Condensed Matter - Superconductivity
- E-Print:
- 22 pages, 11 figures