English

Two-particle bosonic-fermionic quantum walk via 3D integrated photonics

Quantum Physics 2012-01-25 v2 Statistical Mechanics Optics

Abstract

Quantum walk represents one of the most promising resources for the simulation of physical quantum systems, and has also emerged as an alternative to the standard circuit model for quantum computing. Up to now the experimental implementations have been restricted to single particle quantum walk, while very recently the quantum walks of two identical photons have been reported. Here, for the first time, we investigate how the particle statistics, either bosonic or fermionic, influences a two-particle discrete quantum walk. Such experiment has been realized by adopting two-photon entangled states and integrated photonic circuits. The polarization entanglement was exploited to simulate the bunching-antibunching feature of non interacting bosons and fermions. To this scope a novel three-dimensional geometry for the waveguide circuit is introduced, which allows accurate polarization independent behaviour, maintaining a remarkable control on both phase and balancement.

Keywords

Cite

@article{arxiv.1106.5713,
  title  = {Two-particle bosonic-fermionic quantum walk via 3D integrated photonics},
  author = {Linda Sansoni and Fabio Sciarrino and Giuseppe Vallone and Paolo Mataloni and Andrea Crespi and Roberta Ramponi and Roberto Osellame},
  journal= {arXiv preprint arXiv:1106.5713},
  year   = {2012}
}

Comments

4 pages, 5 figures + supplementary information

R2 v1 2026-06-21T18:28:44.475Z