DOI: 10.1002/qute.70396 ISSN: 2511-9044

Heralded Entangled State Generation Enhanced by Photon Addition and Subtraction

Yun‐Long Cao, Xiao‐Ye Xu, Chuan‐Feng Li, Guang‐Can Guo

ABSTRACT

Heralded photonic state engineering has become a promising approach for generating non‐Gaussian quantum resources using experimentally accessible Gaussian operations and conditional measurements. Existing Gaussian state engineering methods mainly target continuous‐variable non‐classical states, whereas the systematic generation of heralded multipartite entangled states remains largely unexplored. In this work, a Gaussian state engineering framework enhanced by photon addition and subtraction for heralded generation of entangled states is developed. By combining single‐mode squeezing, linear interferometers, and conditional photon‐number measurements on ancillary modes, the model probabilistically generates dual‐rail encoded Bell, GHZ, and W states. Squeezing parameters and interferometer settings are systematically optimized to maximize both heralding success probability and fidelity with target states. Results demonstrate that photon addition and subtraction significantly enhance output state non‐classicality and improve generation performance while maintaining computational efficiency comparable to single‐photon source models. Further analysis of the scheme's robustness under parameter perturbations indicates that performance remains stable under realistic experimental imperfections. This work provides a versatile and experimentally feasible framework for scalable heralded entanglement generation using Gaussian resources with non‐Gaussian operations.

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