English

Parity-dependent state transfer for direct entanglement generation

Quantum Physics 2025-03-27 v2

Abstract

As quantum information technologies advance, challenges in scaling and connectivity persist, particularly the need for long-range qubit connectivity and efficient entanglement generation. Perfect State Transfer enables time-optimal state transfer between distant qubits using only nearest-neighbor couplings, enhancing device connectivity. Moreover, the transfer protocol results in effective parity-dependent non-local interactions, extending its utility to entanglement generation. Here, we experimentally demonstrate Perfect State Transfer and multi-qubit entanglement generation on a chain of six superconducting transmon qubits with tunable couplers, controlled via parametric drives. By simultaneously activating and engineering all couplings, we implement the transfer for up to six qubits, verifying single-excitation dynamics for different initial states. Extending the protocol to multiple excitations, we confirm its parity-dependent nature, where excitation number controls the phase of the transferred state. Finally, leveraging this property, we prepare a Greenberger-Horne-Zeilinger state using a single transfer operation, showcasing the potential of Perfect State Transfer for efficient entanglement generation.

Keywords

Cite

@article{arxiv.2405.19408,
  title  = {Parity-dependent state transfer for direct entanglement generation},
  author = {Federico A. Roy and João H. Romeiro and Leon Koch and Ivan Tsitsilin and Johannes Schirk and Niklas J. Glaser and Niklas Bruckmoser and Malay Singh and Franz X. Haslbeck and Gerhard B. P. Huber and Gleb Krylov and Achim Marx and Frederik Pfeiffer and Christian M. F. Schneider and Christian Schweizer and Florian Wallner and David Bunch and Lea Richard and Lasse Södergren and Klaus Liegener and Max Werninghaus and Stefan Filipp},
  journal= {arXiv preprint arXiv:2405.19408},
  year   = {2025}
}

Comments

18 pages, 11 figures

R2 v1 2026-06-28T16:46:12.907Z