English

3D cavity-based graphene superconducting quantum circuits in two-qubit architectures

Quantum Physics 2025-12-25 v1 Mesoscale and Nanoscale Physics

Abstract

We construct a series of graphene-based superconducting quantum circuits and integrate them into 3D cavities. For a single-qubit device, we demonstrate flux-tunable qubit transition, with a measured T1T_1 \approx 48 ns and a lower bound estimate of T2T_2^\ast \approx 17.63 ns. By coupling the device to cavities with different resonant frequencies, we access multiple qubit-cavity coupling regimes, enabling the observation of vacuum Rabi splitting and flux-dependent spectral linewidths. In a two-qubit device consisting of a SQUID and a single junction, power-dependent measurements reveal a two-stage dispersive shift. By flux-tuning the cavity frequency at different readout powers, we attribute the first shift to the fixed-qubit and the second to the SQUID-qubit, indicating successful coupling between the two circuits and a single cavity mode. Our study demonstrates the flexible coupling achievable between 2D-material-based superconducting circuits and 3D cavities, and paves the way toward constructing multi-qubit 3D transmon devices from 2D materials.

Keywords

Cite

@article{arxiv.2512.21213,
  title  = {3D cavity-based graphene superconducting quantum circuits in two-qubit architectures},
  author = {Kuei-Lin Chiu and Avishma J. Lasrado and Cheng-Han Lo and Yen-Chih Chen and Shih-Po Shih and Yen-Hsiang Lin and Chung-Ting Ke},
  journal= {arXiv preprint arXiv:2512.21213},
  year   = {2025}
}
R2 v1 2026-07-01T08:39:59.173Z