English

Non-degenerate noise-resilient superconducting qubit

Quantum Physics 2025-02-24 v1

Abstract

We propose a superconducting qubit based on engineering the first and second harmonics of the Josephson energy and phase relation EJ1cosφE_{J1}\cos \varphi and EJ2cos2φE_{J2}\cos 2\varphi. By constructing a circuit such that EJ2E_{J2} is negative and EJ1EJ2|E_{J1}| \ll |E_{J2}|, we create a periodic potential with two non-degenerate minima. The qubit, which we dub "harmonium", is formed from the lowest-energy states of each minimum. Bit-flip protection of the qubit arises due to the localization of each qubit state to their respective minima, while phase-flip protection can be understood by considering the circuit within the Born-Oppenheimer approximation. We demonstrate with time-domain simulations that single- and two-qubit gates can be performed in approximately one hundred nanoseconds. Finally, we compute the qubit coherence times using numerical diagonalization of the complete circuit in conjunction with state-of-the-art noise models. We estimate out-of-manifold heating times on the order of milliseconds, which can be treated as erasure errors using conventional dispersive readout. We estimate pure-dephasing times on the order of many tens of milliseconds, and bit-flip times on the order of seconds.

Keywords

Cite

@article{arxiv.2502.15459,
  title  = {Non-degenerate noise-resilient superconducting qubit},
  author = {Max Hays and Junghyun Kim and William D. Oliver},
  journal= {arXiv preprint arXiv:2502.15459},
  year   = {2025}
}