Engineering superconducting qubits to reduce quasiparticles and charge noise
Abstract
Identifying, quantifying, and suppressing decoherence mechanisms in qubits are important steps towards the goal of engineering a quantum computer or simulator. Superconducting circuits offer flexibility in qubit design; however, their performance is adversely affected by quasiparticles (broken Cooper pairs). Developing a quasiparticle mitigation strategy compatible with scalable, high-coherence devices is therefore highly desirable. Here we experimentally demonstrate how to control quasiparticle generation by downsizing the qubit, capping it with a metallic cover, and equipping it with suitable quasiparticle traps. Using a flip-chip design, we shape the electromagnetic environment of the qubit above the superconducting gap, inhibiting quasiparticle poisoning. Our findings support the hypothesis that quasiparticle generation is dominated by the breaking of Cooper pairs at the junction, as a result of photon absorption by the antenna-like qubit structure. We achieve record low charge-parity switching rate (<1Hz). Our aluminium devices also display improved stability with respect to discrete charging events.
Keywords
Cite
@article{arxiv.2202.01435,
title = {Engineering superconducting qubits to reduce quasiparticles and charge noise},
author = {Xianchuang Pan and Yuxuan Zhou and Haolan Yuan and Lifu Nie and Weiwei Wei and Libo Zhang and Jian Li and Song Liu and Zhi Hao Jiang and Gianluigi Catelani and Ling Hu and Fei Yan and Dapeng Yu},
journal= {arXiv preprint arXiv:2202.01435},
year = {2022}
}