Noise suppression in a temporal-multimode quantum memory entangled with a photon via asymmetrical photon-collection channel
Ya Li, Ya-fei Wen, Min-jie Wang, Chao Liu, Hai-long Liu, Shu-jing Li,, Zhong-xiao Xu, Hai Wang

TL;DR
This paper demonstrates a scheme using an asymmetric photon-collection channel to suppress noise in a temporal-multimode quantum memory, significantly improving entanglement fidelity and storage performance compared to symmetric collection.
Contribution
The study introduces and experimentally validates an asymmetric photon-collection scheme that reduces noise and enhances entanglement fidelity in multimode quantum memories.
Findings
Asymmetric collection increases Bell parameter S by 3%.
Asymmetric scheme reduces additional noise by 1.7 times.
Higher entanglement storage duration with asymmetric collection.
Abstract
Quantum interfaces (QIs) that generate entanglement between a multimode atomic memory and a photon forms a multiplexed repeater node and hold promise to greatly improve quantum repeater rates. Recently, the temporal multimode spin-wave memory that is entangled with a photon has been demonstrated with cold atoms. However, due to additional noise generated in multimode operation, the fidelity of spin-wave-photon entanglement significantly decreases with the mode number. So far, the improvement on temporal-multimode entanglement fidelity via suppressing the additional noise remains unexplored. Here, we propose and experimentally demonstrate a scheme that can suppress the additional noise of a temporally-multiplexed QI. The scheme uses an asymmetric channel to collect the photons coming and retrieving from the temporally-multiplexed QI. For making comparisons, we also set up a QI that uses…
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