量子计量学
量子传感器
量子技术
量子纠缠
量子成像
量子极限
计算机科学
量子
量子信息
计量学
量子计算机
量子态
量子电路
物理
计算机工程
电子工程
量子力学
开放量子系统
量子网络
工程类
作者
Christian D. Marciniak,Thomas Feldker,Ivan Pogorelov,Raphael Kaubruegger,Denis V. Vasilyev,Rick van Bijnen,Philipp Schindler,P. Zoller,R. Blatt,Thomas Monz
出处
期刊:Nature
[Springer Nature]
日期:2022-03-23
卷期号:603 (7902): 604-609
被引量:54
标识
DOI:10.1038/s41586-022-04435-4
摘要
Quantum sensors are an established technology that has created new opportunities for precision sensing across the breadth of science. Using entanglement for quantum enhancement will allow us to construct the next generation of sensors that can approach the fundamental limits of precision allowed by quantum physics. However, determining how state-of-the-art sensing platforms may be used to converge to these ultimate limits is an outstanding challenge. Here we merge concepts from the field of quantum information processing with metrology, and successfully implement experimentally a programmable quantum sensor operating close to the fundamental limits imposed by the laws of quantum mechanics. We achieve this by using low-depth, parametrized quantum circuits implementing optimal input states and measurement operators for a sensing task on a trapped-ion experiment. With 26 ions, we approach the fundamental sensing limit up to a factor of 1.45 ± 0.01, outperforming conventional spin-squeezing with a factor of 1.87 ± 0.03. Our approach reduces the number of averages to reach a given Allan deviation by a factor of 1.59 ± 0.06 compared with traditional methods not using entanglement-enabled protocols. We further perform on-device quantum-classical feedback optimization to 'self-calibrate' the programmable quantum sensor with comparable performance. This ability illustrates that this next generation of quantum sensor can be used without previous knowledge of the device or its noise environment.
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