English

Measurement-Based Quantum Computing on a Photonic Chip

Quantum Physics 2026-07-08 v1

Abstract

Integrated photonics provides a scalable platform for quantum information processing. In this context, measurement-based quantum computing (MBQC) offers an attractive approach in which quantum computation is realised by adaptive measurements on highly entangled graph states, circumventing the need for deterministic photon-photon interactions. Here, we demonstrate MBQC on an integrated silicon photonic chip capable of generating photonic graph states with up to four qubits. We achieve fidelities of FStar=(83.5±1.8)%F_{Star} = (83.5 \pm 1.8)\,\% and FLin=(75.6±1.1)%F_{Lin} = (75.6 \pm 1.1)\,\% for four-photon star and linear graph states, respectively. We use these resource states to implement MBQC-based single- and two-qubit gates and to demonstrate Grover's search algorithm and the Deutsch-Jozsa algorithm. These results establish the feasibility of reconfigurable four-photon MBQC on an integrated photonic platform and provide a foundation for future larger-scale implementations.

Cite

@article{arxiv.2607.07890,
  title  = {Measurement-Based Quantum Computing on a Photonic Chip},
  author = {Jeldrik Huster and Louis L. Hohmann and Kevin Edelmann and Stefanie Barz},
  journal= {arXiv preprint arXiv:2607.07890},
  year   = {2026}
}