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Genuine Multipartite Entanglement between Logical Qubits via Cross-Code Lattice Surgery

Quantum Physics 2026-07-05 v1

Abstract

Universal quantum computers are expected to generate arbitrary complex quantum states of logical qubits encoded in many physical qubits. This capability hinges on a fault-tolerantly implemented universal gate set, which no single quantum error-correction code admits transversally but which becomes accessible by joining complementary codes via lattice surgery. Here we report on the experimental generation and certification of logical genuine multipartite entanglement in a trapped-ion quantum processor using a transversally implemented universal logical gate set. The gate set is accessed via lattice surgery across two different codes and comprises a Hadamard gate on a four-qubit surface code and a doubly controlled Pauli-ZZ (CCZ\overline{\mathrm{CCZ}}) gate on an eight-qubit 3D colour code. To showcase this lattice-surgery toolbox, we generate both stabiliser (Greenberger-Horne-Zeilinger) and non-stabiliser (CCZ|\overline{\mathrm{CCZ}}\rangle) states of three logical qubits and verify their genuine multipartite entanglement--a form of correlation beyond statistical mixtures of bipartite entanglement across any bipartition. We further use these cross-code primitives to demonstrate arbitrary rotations of single logical qubits via a CCZ\overline{\mathrm{CCZ}}-based resource gadget accessing the full universal gate set through lattice surgery. Together, these demonstrations showcase the core building blocks of an architecture for fault-tolerant quantum computation and its ability to generate complex logical quantum states.

Cite

@article{arxiv.2607.04227,
  title  = {Genuine Multipartite Entanglement between Logical Qubits via Cross-Code Lattice Surgery},
  author = {Alex Steiner and Tomasz Andrzejewski and Phila Rembold and Hendrik Poulsen Nautrup and Christian D. Marciniak and Robert Freund and Ivan Pogorelov and Thomas Monz and Philipp Schindler and Marcel Meyer and Nicolai Friis},
  journal= {arXiv preprint arXiv:2607.04227},
  year   = {2026}
}

Comments

9+13 pages, 16 figures

R2 v1 2026-07-22T20:27:15.436Z