English

Sequential generation of linear cluster states from a single photon emitter

Quantum Physics 2020-11-10 v2

Abstract

Light states composed of multiple entangled photons - such as cluster states - are essential for developing and scaling-up quantum computing networks. Photonic cluster states with discrete variables can be obtained from single-photon sources and entangling gates, but so far this has only been done with probabilistic sources constrained to intrinsically-low efficiencies, and an increasing hardware overhead. Here, we report the resource-efficient generation of polarization-encoded, individually-addressable, photons in linear cluster states occupying a single spatial mode. We employ a single entangling-gate in a fiber loop configuration to sequentially entangle an ever-growing stream of photons originating from the currently most efficient single-photon source technology - a semiconductor quantum dot. With this apparatus, we demonstrate the generation of linear cluster states up to four photons in a single-mode fiber. The reported architecture can be programmed to generate linear-cluster states of any number of photons with record scaling ratios, potentially enabling practical implementation of photonic quantum computing schemes.

Keywords

Cite

@article{arxiv.1912.04375,
  title  = {Sequential generation of linear cluster states from a single photon emitter},
  author = {D. Istrati and Y. Pilnyak and J. C. Loredo and C. Antón and N. Somaschi and P. Hilaire and H. Ollivier and M. Esmann and L. Cohen and L. Vidro and C. Millet and A. Lemaître and I. Sagnes and A. Harouri and L. Lanco and P. Senellart and H. S. Eisenberg},
  journal= {arXiv preprint arXiv:1912.04375},
  year   = {2020}
}

Comments

7 pages, 4 figures. Supp. info: 7 pages, 3 figures

R2 v1 2026-06-23T12:40:42.499Z