English

Boosted Bell-state measurements for photonic quantum computation

Quantum Physics 2025-09-26 v1

Abstract

Fault-tolerant fusion-based photonic quantum computing (FBQC) greatly relies on entangling two-photon measurements, called fusions. These fusions can be realized using linear-optical projective Bell-state measurements (BSMs). These linear-optical BSMs are limited to a success probability of 50%, greatly reducing the performance of FBQC schemes. To improve the performance of FBQC architectures, a boosted BSM scheme taking advantage of ancillary entangled photon pairs and a 4x4 multiport interferometer has been proposed. This scheme allows the success probability to be increased up to 75%. In this work, we experimentally demonstrate this boosted BSM by using two Sagnac photon-pair sources and a fibre-based 4x4 multiport beam splitter. A boosted BSM success probability of (69.3±0.3)%(69.3\pm0.3)\% has been achieved, exceeding the 50% limit. Furthermore, based on our BSMs, we calculate photon-loss thresholds for a fusion network using encoded six-ring resource states. We show that with this boosted BSM scheme an individual photon loss probability of 1.4% can be tolerated, while the non-boosted BSM leads to a photon-loss threshold of 0.45%.

Keywords

Cite

@article{arxiv.2410.16380,
  title  = {Boosted Bell-state measurements for photonic quantum computation},
  author = {Nico Hauser and Matthias J. Bayerbach and Simone E. D'Aurelio and Raphael Weber and Matteo Santandrea and Shreya P. Kumar and Ish Dhand and Stefanie Barz},
  journal= {arXiv preprint arXiv:2410.16380},
  year   = {2025}
}

Comments

8 pages, 7 figures

R2 v1 2026-06-28T19:30:26.366Z