Using bi-fluxon tunneling to protect the Fluxonium qubit

Fuente: arXiv
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Autori principali: Ardati, Waël, Léger, Sébastien, Kumar, Shelender, Suresh, Vishnu Narayanan, Nicolas, Dorian, Mori, Cyril, D'Esposito, Francesca, Vakhtel, Tereza, Buisson, Olivier, Ficheux, Quentin, Roch, Nicolas
Natura: Preprint
Pubblicazione: 2024
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author Ardati, Waël
Léger, Sébastien
Kumar, Shelender
Suresh, Vishnu Narayanan
Nicolas, Dorian
Mori, Cyril
D'Esposito, Francesca
Vakhtel, Tereza
Buisson, Olivier
Ficheux, Quentin
Roch, Nicolas
author_facet Ardati, Waël
Léger, Sébastien
Kumar, Shelender
Suresh, Vishnu Narayanan
Nicolas, Dorian
Mori, Cyril
D'Esposito, Francesca
Vakhtel, Tereza
Buisson, Olivier
Ficheux, Quentin
Roch, Nicolas
contents Encoding quantum information in quantum states with disjoint wave-function support and noise insensitive energies is the key behind the idea of qubit protection. While fully protected qubits are expected to offer exponential protection against both energy relaxation and pure dephasing, simpler circuits may grant partial protection with currently achievable parameters. Here, we study a fluxonium circuit in which the wave-functions are engineered to minimize their overlap while benefiting from a first-order-insensitive flux sweet spot. Taking advantage of a large superinductance ($L\sim 1~μ\rm{H}$), our circuit incorporates a resonant tunneling mechanism at zero external flux that couples states with the same fluxon parity, thus enabling bifluxon tunneling. The states $|0\rangle$ and $|1\rangle$ are encoded in wave-functions with parities 0 and 1, respectively, ensuring a minimal form of protection against relaxation. Two-tone spectroscopy reveals the energy level structure of the circuit and the presence of $4 π$ quantum-phase slips between different potential wells corresponding to $m=\pm 1$ fluxons, which can be precisely described by a simple fluxonium Hamiltonian or by an effective bifluxon Hamiltonian. Despite suboptimal fabrication, the measured relaxation ($T_1 = 177\pm 3 ~μs$) and dephasing ($T_2^E = 75\pm 5~μ\rm{s}$) times not only demonstrate the relevance of our approach but also opens an alternative direction towards quantum computing using partially-protected fluxonium qubits.
format Preprint
id arxiv_https___arxiv_org_abs_2402_04495
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Using bi-fluxon tunneling to protect the Fluxonium qubit
Ardati, Waël
Léger, Sébastien
Kumar, Shelender
Suresh, Vishnu Narayanan
Nicolas, Dorian
Mori, Cyril
D'Esposito, Francesca
Vakhtel, Tereza
Buisson, Olivier
Ficheux, Quentin
Roch, Nicolas
Quantum Physics
Encoding quantum information in quantum states with disjoint wave-function support and noise insensitive energies is the key behind the idea of qubit protection. While fully protected qubits are expected to offer exponential protection against both energy relaxation and pure dephasing, simpler circuits may grant partial protection with currently achievable parameters. Here, we study a fluxonium circuit in which the wave-functions are engineered to minimize their overlap while benefiting from a first-order-insensitive flux sweet spot. Taking advantage of a large superinductance ($L\sim 1~μ\rm{H}$), our circuit incorporates a resonant tunneling mechanism at zero external flux that couples states with the same fluxon parity, thus enabling bifluxon tunneling. The states $|0\rangle$ and $|1\rangle$ are encoded in wave-functions with parities 0 and 1, respectively, ensuring a minimal form of protection against relaxation. Two-tone spectroscopy reveals the energy level structure of the circuit and the presence of $4 π$ quantum-phase slips between different potential wells corresponding to $m=\pm 1$ fluxons, which can be precisely described by a simple fluxonium Hamiltonian or by an effective bifluxon Hamiltonian. Despite suboptimal fabrication, the measured relaxation ($T_1 = 177\pm 3 ~μs$) and dephasing ($T_2^E = 75\pm 5~μ\rm{s}$) times not only demonstrate the relevance of our approach but also opens an alternative direction towards quantum computing using partially-protected fluxonium qubits.
title Using bi-fluxon tunneling to protect the Fluxonium qubit
topic Quantum Physics
url https://arxiv.org/abs/2402.04495