Distributed multi-parameter quantum metrology with a superconducting quantum network

Fuente: arXiv
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Main Authors: Zhang, Jiajian, Wang, Lingna, Hai, Yong-Ju, Zhang, Jiawei, Chu, Ji, Jiang, Ji, Huang, Wenhui, Liang, Yongqi, Qiu, Jiawei, Sun, Xuandong, Tao, Ziyu, Zhang, Libo, Zhou, Yuxuan, Chen, Yuanzhen, Guo, Weijie, Linpeng, Xiayu, Liu, Song, Ren, Wenhui, Zhong, Youpeng, Niu, Jingjing, Yuan, Haidong, Yu, Dapeng
Format: Preprint
Published: 2024
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author Zhang, Jiajian
Wang, Lingna
Hai, Yong-Ju
Zhang, Jiawei
Chu, Ji
Jiang, Ji
Huang, Wenhui
Liang, Yongqi
Qiu, Jiawei
Sun, Xuandong
Tao, Ziyu
Zhang, Libo
Zhou, Yuxuan
Chen, Yuanzhen
Guo, Weijie
Linpeng, Xiayu
Liu, Song
Ren, Wenhui
Zhong, Youpeng
Niu, Jingjing
Yuan, Haidong
Yu, Dapeng
author_facet Zhang, Jiajian
Wang, Lingna
Hai, Yong-Ju
Zhang, Jiawei
Chu, Ji
Jiang, Ji
Huang, Wenhui
Liang, Yongqi
Qiu, Jiawei
Sun, Xuandong
Tao, Ziyu
Zhang, Libo
Zhou, Yuxuan
Chen, Yuanzhen
Guo, Weijie
Linpeng, Xiayu
Liu, Song
Ren, Wenhui
Zhong, Youpeng
Niu, Jingjing
Yuan, Haidong
Yu, Dapeng
contents Quantum metrology has emerged as a powerful tool for timekeeping, field sensing, and precision measurements in fundamental physics. With the advent of distributed quantum metrology, its capabilities have extended to probing spatially distributed parameters across networked quantum systems. However, scalable implementations of distributed quantum metrology with multi-parameter estimation remain limited, particularly due to the challenges of generating and distributing entanglement across a quantum network and dealing with incompatibilities in multi-parameter quantum metrology. Here we demonstrate distributed multi-parameter quantum metrology on a modular superconducting quantum network with low-loss microwave interconnects, a platform that uniquely combines fast gate operations, adaptive control, and deterministic non-local entanglement generation. Using a control-enhanced sequential protocol, we estimate all three components of a remote vector field, achieving up to 13.72 dB improvement in precision over the individual strategy. We further perform direct estimation of vector field gradients along two directions across spatially separated nodes, realizing a 3.44 dB gain over local entanglement strategies. These results establish superconducting quantum networks as a competitive and reconfigurable platform for scalable multi-parameter distributed quantum metrology.
format Preprint
id arxiv_https___arxiv_org_abs_2412_18398
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Distributed multi-parameter quantum metrology with a superconducting quantum network
Zhang, Jiajian
Wang, Lingna
Hai, Yong-Ju
Zhang, Jiawei
Chu, Ji
Jiang, Ji
Huang, Wenhui
Liang, Yongqi
Qiu, Jiawei
Sun, Xuandong
Tao, Ziyu
Zhang, Libo
Zhou, Yuxuan
Chen, Yuanzhen
Guo, Weijie
Linpeng, Xiayu
Liu, Song
Ren, Wenhui
Zhong, Youpeng
Niu, Jingjing
Yuan, Haidong
Yu, Dapeng
Quantum Physics
Quantum metrology has emerged as a powerful tool for timekeeping, field sensing, and precision measurements in fundamental physics. With the advent of distributed quantum metrology, its capabilities have extended to probing spatially distributed parameters across networked quantum systems. However, scalable implementations of distributed quantum metrology with multi-parameter estimation remain limited, particularly due to the challenges of generating and distributing entanglement across a quantum network and dealing with incompatibilities in multi-parameter quantum metrology. Here we demonstrate distributed multi-parameter quantum metrology on a modular superconducting quantum network with low-loss microwave interconnects, a platform that uniquely combines fast gate operations, adaptive control, and deterministic non-local entanglement generation. Using a control-enhanced sequential protocol, we estimate all three components of a remote vector field, achieving up to 13.72 dB improvement in precision over the individual strategy. We further perform direct estimation of vector field gradients along two directions across spatially separated nodes, realizing a 3.44 dB gain over local entanglement strategies. These results establish superconducting quantum networks as a competitive and reconfigurable platform for scalable multi-parameter distributed quantum metrology.
title Distributed multi-parameter quantum metrology with a superconducting quantum network
topic Quantum Physics
url https://arxiv.org/abs/2412.18398