Quantum Vector DC Magnetometry via Selective Phase Accumulation
Min Zhuang, Sijie Chen, Jiahao Huang, and Chaohong Lee

TL;DR
This paper introduces a quantum protocol for high-precision vector DC magnetic field measurement using selective phase accumulation, leveraging entangled states to approach the Heisenberg limit in multi-parameter estimation.
Contribution
It presents a novel general protocol for quantum vector magnetometry that achieves high efficiency and precision, including Heisenberg-limited multi-parameter estimation with entangled probes.
Findings
Protocol enables selective phase accumulation of magnetic field components.
Using entangled states, measurement precision approaches the Heisenberg limit.
Parallel and sequential schemes for estimating three magnetic field components.
Abstract
Precision measurement of magnetic fields is an important goal for fundamental science and practical sensing technology. Sensitive detection of a vector magnetic field is a crucial issue in quantum magnetometry, it remains a challenge to estimate a vector DC magnetic field with high efficiency and high precision. Here, we propose a general protocol for quantum vector DC magnetometry via selective phase accumulation of both non-entangled and entangled quantum probes. Based upon the Ramsey interferometry, our protocol may achieve selective phase accumulation of only one magnetic field component by inserting well-designed pulse sequence. In the parallel scheme, three parallel quantum interferometries are utilized to estimate three magnetic field components independently.In the sequential scheme, by applying a pulse sequence along different directions, three magnetic field components can be…
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Taxonomy
TopicsQuantum Information and Cryptography · Atomic and Subatomic Physics Research · Quantum and electron transport phenomena
