English

Scalable Single-Step Generation of W States in 2D Superconducting Qubit Lattices

Quantum Physics 2026-05-20 v1

Abstract

The reliable generation of multi-qubit entanglement is a prerequisite for large-scale quantum information technologies. In particular, W states are a valuable resource owing to their resilience under local loss or measurement. Nevertheless, preparing these states with sequential two-qubit gates often requires substantial time overhead. By contrast, engineered simultaneous interactions enable fast entanglement generation, even in qubit systems with limited nearest-neighbour connectivity. Here, we demonstrate a set of fast and robust operations for coherently distributing a single excitation across a lattice of arbitrary size, thereby directly generating W states from initial product states. In 2D lattices, the excitation propagates along both directions simultaneously, such that the total entanglement time scales only with the largest dimension. We exploit this property to prepare a six-qubit W state in a 3×\times2 superconducting lattice within 99 ns, achieving a tomographic fidelity of 83.9±\pm1.0%. We then extend the protocol to create entanglement across chains of up to seven qubits, with the largest W state generated in 264 ns with a fidelity of 79.6±\pm1.3%.

Cite

@article{arxiv.2605.18962,
  title  = {Scalable Single-Step Generation of W States in 2D Superconducting Qubit Lattices},
  author = {João H. Romeiro and Federico A. Roy and Niklas Bruckmoser and Ivan Tsitsilin and Niklas J. Glaser and Christian M. F. Schneider and Gerhard B. P. Huber and Saya A. Schöbe and Johannes Schirk and Florian Wallner and Malay Singh and Julius Feigl and Leon Koch and Lasse Södergren and Max Werninghaus and Stefan Filipp},
  journal= {arXiv preprint arXiv:2605.18962},
  year   = {2026}
}

Comments

12 pages, 5 figures, and Supplementary Notes