English

Simultaneous High-Fidelity Readout and Strong Coupling for a Donor-Based Spin Qubit

Mesoscale and Nanoscale Physics 2026-04-24 v2

Abstract

Superconducting resonators coupled to solid-state qubits offer a scalable architecture for long-range entangling operations and fast, high-fidelity readout. Realizing this requires low photon-loss rates and qubits with tunable electric dipole moments that couple strongly to the resonator's electric field while maintaining long coherence times. For spin qubits, spin-photon coupling is typically achieved via spin-charge hybridization. However, this introduces a fundamental trade-off: a large spin-charge admixture enhances the coupling strength, which boosts readout and resonator-mediated gate speeds, but exposes the qubit to increased decoherence, thereby increasing the threshold required for strong coupling and limiting the time available for accurate state measurement. This makes it essential to identify optimal operating points for each qubit platform. We address this for the donor-based flip-flop qubit, whose microwave-controllable electron-nuclear spin states make it suitable for coupling to microwave resonators. We demonstrate that, by choosing intermediate tunnel couplings that balance strong interaction with long qubit lifetimes, high-fidelity readout and strong coupling are simultaneously achievable. We also map out the respective charge-photon couplings and photon-loss rates required. Furthermore, we show that experimental constraints on charge-photon coupling and photon loss can be mitigated using squeezed input fields. As similar trade-offs appear in quantum-dot-based qubits, our methods and insights extend naturally to these platforms, offering a potential route toward scalable architectures.

Keywords

Cite

@article{arxiv.2602.12248,
  title  = {Simultaneous High-Fidelity Readout and Strong Coupling for a Donor-Based Spin Qubit},
  author = {Si Yan Koh and Weifan Wu and Kelvin Onggadinata and Arghya Maity and Mark Chiyuan Ma and Calvin Pei Yu Wong and Kuan Eng Johnson Goh and Bent Weber and Hui Khoon Ng and Teck Seng Koh},
  journal= {arXiv preprint arXiv:2602.12248},
  year   = {2026}
}

Comments

Minor edits and typos fixed

R2 v1 2026-07-01T10:34:14.445Z