We propose an architecture for bit-flip error correction of Andreev spins that is protected by Kramers’degeneracy. Specifically, we show that a coupling network of linear inductors and Andreev spin qubits results in a static Hamiltonian composed of the stabilizers of a bit-flip code. The electrodynamics of the many-body spin states also respect these stabilizers, and we show how reflectometry off a single coupled resonator can thereby accomplish their projective measurement. We further show how circuit-mediated spin couplings enable error correction operations and a complete set of single- and two-module logical quantum gates. The concept, which we dub the “Ising molecule qubit,” is experimentally feasible and provides a path for compact noise-biased qubits.
Kramers-protected hardware-efficient error correction with Andreev spin qubits / Lu, Haoran; Day, Isidora Araya; Akhmerov, Anton R.; Van Heck, Bernard; Fatemi, Valla. - In: PHYSICAL REVIEW LETTERS. - ISSN 0031-9007. - 135:21(2025), pp. 1-9. [10.1103/lqf3-6r5z]
Kramers-protected hardware-efficient error correction with Andreev spin qubits
van Heck, BernardPenultimo
;
2025
Abstract
We propose an architecture for bit-flip error correction of Andreev spins that is protected by Kramers’degeneracy. Specifically, we show that a coupling network of linear inductors and Andreev spin qubits results in a static Hamiltonian composed of the stabilizers of a bit-flip code. The electrodynamics of the many-body spin states also respect these stabilizers, and we show how reflectometry off a single coupled resonator can thereby accomplish their projective measurement. We further show how circuit-mediated spin couplings enable error correction operations and a complete set of single- and two-module logical quantum gates. The concept, which we dub the “Ising molecule qubit,” is experimentally feasible and provides a path for compact noise-biased qubits.| File | Dimensione | Formato | |
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