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Preserving entanglement in a solid-spin system using quantum autoencoders

delete2022-09-26
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OA
AI
F
Feifei Zhou
Y
Yu Tian
Y
Yumeng Song
C
Chu-Dan Qiu
X
Xiangyu Wang
M
Mingti Zhou
陈冰 (Bing Chen)
N
Nanyang Xu *
D
Dawei Lu *
DOI:10.1063/5.0120060delete
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Abstract

Abstract

En 中文
Entanglement, as a key resource for modern quantum technologies, is extremely fragile due to the decoherence. Here, we show that a quantum autoencoder, which is trained to compress a particular set of quantum entangled states into a subspace that is robust to decoherence, can be employed to preserve entanglement. The training process is based on a hybrid quantum-classical approach to improve the efficiency in building the autoencoder and reduce the experimental errors during the optimization. Using nitrogen-vacancy centers in diamond, we demonstrate that the entangled states between the electron and nuclear spins can be encoded into the nucleus subspace, which has much longer coherence time. As a result, lifetime of the Bell states in this solid-spin system is extended from 2.22 +/- 0.43 mu s to 3.03 +/- 0.56 ms, yielding a three orders of magnitude improvement. The quantum autoencoder approach is universal, paving the way of utilizing long lifetime nuclear spins as immediate-access quantum memories in quantum information tasks. Published under an exclusive license by AIP Publishing.
Keywords:
SINGLE SPINS

Journal

Applied Physics Letters cover
Applied Physics Letters
IF:
3.6
Papers:
10.4W
Citations:
17.8W

Organization

H
hefei university of technology
Scholars:
2.5W
Papers: 1.7W
Citations: 35
Z
Zhejiang Laboratory
Scholars:
1.8K
Papers: 1.7K
Citations: 0