Research progress on high-sensitivity chip-scale atomic magnetometers

磁强计 物理 工程类 材料科学 噪音(视频) 计算机科学 光学 声学 杂乱 工作(物理)
作者
Hao Liu,liu lin,Xiaodong Han,Xiaoqiang Gao
标识
DOI:10.1117/12.3108733
摘要

As one of the fundamental properties of matter, magnetic fields have extensive application value in fields such as military, medical, and industrial sectors. High-sensitivity magnetic field measurement technology is crucial for exploring the physical world, ensuring national security, and promoting industrial development. Traditional magnetic sensors based on classical physics principles, such as fluxgate and Hall effect sensors, have become increasingly difficult to meet growing demands in terms of sensitivity, volume, and power consumption. In contrast, atomic magnetometers based on quantum effects utilize the interaction between atomic spins and external magnetic fields for measurement, offering advantages such as high sensitivity, no requirement for cryogenic cooling, and the capability for absolute measurement, making them a novel type of magnetic sensor that has received significant attention in recent years. In particular, the development of chip-scale atomic magnetometers, through technologies such as Micro-Electro-Mechanical Systems (MEMS), has significantly reduced the volume and power consumption of atomic magnetometers, enabling them to demonstrate tremendous application potential in fields such as ocean exploration, biomedical applications, and geological exploration. This paper will review the technological advances of high-sensitivity chip-scale atomic magnetometers, with a focus on discussing the latest achievements in their miniaturization and small-scale research.
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