Quantum Brain
← Back to papers

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

Jun Gao, Leonardo Santos, Govind Krishna, Ze-sheng Xu, A. Iovan, S. Steinhauer, O. Gühne, P. Poole, D. Dalacu, V. Zwiller, A. Elshaari·May 24, 2023·DOI: 10.1021/acs.nanolett.3c01551
PhysicsMedicine

AI Breakdown

Get a structured breakdown of this paper — what it's about, the core idea, and key takeaways for the field.

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.

Related Research

Quantum Intelligence

Ask about quantum research, companies, or market developments.