Scalable Generation and Detection of on-Demand W States in Nanophotonic Circuits

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Abstract

Quantum physics phenomena, entanglement and coherence, are crucial for quantum information protocols, but understanding these in systems with more than two parts is challenging due to increasing complexity. The W state, a multipartite entangled state, is notable for its robustness and benefits in quantum communication. Here, we generate eight-mode on-demand single-photon W states, using nanowire quantum dots and a silicon nitride photonic chip. We demonstrate a reliable and scalable technique for reconstructing the W state in photonic circuits using Fourier and real-space imaging, supported by the Gerchberg-Saxton phase retrieval algorithm. Additionally, we utilize an entanglement witness to distinguish between mixed and entangled states, thereby affirming the entangled nature of our generated state. The study provides a new imaging approach of assessing multipartite entanglement in W states, paving the way for further progress in image processing and Fourier-space analysis techniques for complex quantum systems.

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Gao, J., Santos, L., Krishna, G., Xu, Z. S., Iovan, A., Steinhauer, S., … Elshaari, A. W. (2023). Scalable Generation and Detection of on-Demand W States in Nanophotonic Circuits. Nano Letters, 23(11), 5350–5357. https://doi.org/10.1021/acs.nanolett.3c01551

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