TY - JOUR
T1 - The Floquet Fluxonium Molecule
T2 - Driving Down Dephasing in Coupled Superconducting Qubits
AU - Thibodeau, Matthew
AU - Kou, Angela
AU - Clark, Bryan K.
N1 - We acknowledge support from the NSF Quantum Leap Challenge Institute for Hybrid Quantum Architectures and Networks (NSF Award 2016136) (B.K.C. and M.T.). This work made use of the Illinois Campus Cluster, a computing resource that is operated by the Illinois Campus Cluster Program (ICCP) in conjunction with the National Center for Supercomputing Applications (NCSA) and which is supported by funds from the University of Illinois at Urbana-Champaign. This research was supported in part by the National Science Foundation under Grant No. NSF PHY-1748958 and by the Heising-Simons Foundation (M.T.). This work is partially supported by the Air Force Office of Scientific Research under Award No. FA9550-21-1-0327 (A.K.).
PY - 2024/10
Y1 - 2024/10
N2 - High-coherence qubits, which can store and manipulate quantum states for long times with low error rates, are necessary building blocks for quantum computers. Here we propose a driven superconducting erasure qubit, the Floquet fluxonium molecule, which minimizes bit-flip rates through disjoint support of its qubit states and suppresses phase flips by a novel second-order insensitivity to flux-noise dephasing. We estimate the bit-flip, phase-flip, and erasure rates through numerical simulations, with predicted coherence times of approximately 50 ms in the computational subspace and erasure lifetimes of about 500μs. We also present a protocol for performing high-fidelity single-qubit rotation gates via additional flux modulation, on timescales of roughly 500 ns, and propose a scheme for erasure detection and logical readout. Our results demonstrate the utility of drives for building new qubits that can outperform their static counterparts.
AB - High-coherence qubits, which can store and manipulate quantum states for long times with low error rates, are necessary building blocks for quantum computers. Here we propose a driven superconducting erasure qubit, the Floquet fluxonium molecule, which minimizes bit-flip rates through disjoint support of its qubit states and suppresses phase flips by a novel second-order insensitivity to flux-noise dephasing. We estimate the bit-flip, phase-flip, and erasure rates through numerical simulations, with predicted coherence times of approximately 50 ms in the computational subspace and erasure lifetimes of about 500μs. We also present a protocol for performing high-fidelity single-qubit rotation gates via additional flux modulation, on timescales of roughly 500 ns, and propose a scheme for erasure detection and logical readout. Our results demonstrate the utility of drives for building new qubits that can outperform their static counterparts.
UR - https://www.scopus.com/pages/publications/85208704715
UR - https://www.scopus.com/pages/publications/85208704715#tab=citedBy
U2 - 10.1103/PRXQuantum.5.040314
DO - 10.1103/PRXQuantum.5.040314
M3 - Article
AN - SCOPUS:85208704715
SN - 2691-3399
VL - 5
JO - PRX Quantum
JF - PRX Quantum
IS - 4
M1 - 040314
ER -