High-performance cavity-enhanced quantum memory with warm atomic cell

High-performance quantum memory for quantized states of light is a prerequisite building block of quantum information technology. Despite great progresses of optical quantum memories based on interactions of light and atoms, physical features of these memories still cannot satisfy requirements for a...

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Bibliographic Details
Main Authors: Chai, T. (Author), Jia, X. (Author), Lei, X. (Author), Li, R. (Author), Ma, L. (Author), Peng, K. (Author), Xie, C. (Author), Yan, J. (Author), Yan, Z. (Author)
Format: Article
Language:English
Published: Nature Research 2022
Subjects:
Online Access:View Fulltext in Publisher
LEADER 02145nam a2200301Ia 4500
001 10.1038-s41467-022-30077-1
008 220706s2022 CNT 000 0 und d
020 |a 20411723 (ISSN) 
245 1 0 |a High-performance cavity-enhanced quantum memory with warm atomic cell 
260 0 |b Nature Research  |c 2022 
856 |z View Fulltext in Publisher  |u https://doi.org/10.1038/s41467-022-30077-1 
520 3 |a High-performance quantum memory for quantized states of light is a prerequisite building block of quantum information technology. Despite great progresses of optical quantum memories based on interactions of light and atoms, physical features of these memories still cannot satisfy requirements for applications in practical quantum information systems, since all of them suffer from trade-off between memory efficiency and excess noise. Here, we report a high-performance cavity-enhanced electromagnetically-induced-transparency memory with warm atomic cell in which a scheme of optimizing the spatial and temporal modes based on the time-reversal approach is applied. The memory efficiency up to 67 ± 1% is directly measured and a noise level close to quantum noise limit is simultaneously reached. It has been experimentally demonstrated that the average fidelities for a set of input coherent states with different phases and amplitudes within a Gaussian distribution have exceeded the classical benchmark fidelities. Thus the realized quantum memory platform has been capable of preserving quantized optical states, and is ready to be applied in quantum information systems, such as distributed quantum logic gates and quantum-enhanced atomic magnetometry. © 2022, The Author(s). 
650 0 4 |a article 
650 0 4 |a information system 
650 0 4 |a logic 
650 0 4 |a magnetometry 
650 0 4 |a memory 
650 0 4 |a noise 
700 1 0 |a Chai, T.  |e author 
700 1 0 |a Jia, X.  |e author 
700 1 0 |a Lei, X.  |e author 
700 1 0 |a Li, R.  |e author 
700 1 0 |a Ma, L.  |e author 
700 1 0 |a Peng, K.  |e author 
700 1 0 |a Xie, C.  |e author 
700 1 0 |a Yan, J.  |e author 
700 1 0 |a Yan, Z.  |e author 
773 |t Nature Communications