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使用高灵敏度 TMR 传感器的无磁屏蔽室磁心电图仪的研制。

Development of Magnetocardiograph without Magnetically Shielded Room Using High-Detectivity TMR Sensors.

机构信息

Device & Process Application Development Unit, Research & Development Center, Asahi Kasei Microdevices Corporation, Atsugi AXT Maintower 20F, 3050 Okata, Atsugi 243-0021, Kanagawa, Japan.

Department of Applied Physics, Graduate School of Engineering, Tohoku University, 6-6-05 Aoba-yama, Aoba-ku, Sendai 980-8579, Miyagi, Japan.

出版信息

Sensors (Basel). 2023 Jan 6;23(2):646. doi: 10.3390/s23020646.

Abstract

A magnetocardiograph that enables the clear observation of heart magnetic field mappings without magnetically shielded rooms at room temperatures has been successfully manufactured. Compared to widespread electrocardiographs, magnetocardiographs commonly have a higher spatial resolution, which is expected to lead to early diagnoses of ischemic heart disease and high diagnostic accuracy of ventricular arrhythmia, which involves the risk of sudden death. However, as the conventional superconducting quantum interference device (SQUID) magnetocardiographs require large magnetically shielded rooms and huge running costs to cool the SQUID sensors, magnetocardiography is still unfamiliar technology. Here, in order to achieve the heart field detectivity of 1.0 pT without magnetically shielded rooms and enough magnetocardiography accuracy, we aimed to improve the detectivity of tunneling magnetoresistance (TMR) sensors and to decrease the environmental and sensor noises with a mathematical algorithm. The magnetic detectivity of the TMR sensors was confirmed to be 14.1 pT on average in the frequency band between 0.2 and 100 Hz in uncooled states, thanks to the original multilayer structure and the innovative pattern of free layers. By constructing a sensor array using 288 TMR sensors and applying the mathematical magnetic shield technology of signal space separation (SSS), we confirmed that SSS reduces the environmental magnetic noise by -73 dB, which overtakes the general triple magnetically shielded rooms. Moreover, applying digital processing that combined the signal average of heart magnetic fields for one minute and the projection operation, we succeeded in reducing the sensor noise by about -23 dB. The heart magnetic field resolution measured on a subject in a laboratory in an office building was 0.99 pT and obtained magnetocardiograms and current arrow maps as clear as the SQUID magnetocardiograph does in the QRS and ST segments. Upon utilizing its superior spatial resolution, this magnetocardiograph has the potential to be an important tool for the early diagnosis of ischemic heart disease and the risk management of sudden death triggered by ventricular arrhythmia.

摘要

一种能够在室温下无需磁屏蔽室即可清晰观察心脏磁场图的磁心图仪已经成功制造。与广泛使用的心电图仪相比,磁心图仪通常具有更高的空间分辨率,有望实现缺血性心脏病的早期诊断和室性心律失常的高诊断准确性,而室性心律失常可能导致猝死。然而,由于传统超导量子干涉仪 (SQUID) 磁心图仪需要大型磁屏蔽室和巨额运行成本来冷却 SQUID 传感器,因此磁心图技术仍然鲜为人知。在这里,为了在无需磁屏蔽室的情况下实现 1.0 pT 的心脏场检测灵敏度,并具有足够的磁心图精度,我们旨在提高隧道磁阻 (TMR) 传感器的检测灵敏度,并通过数学算法降低环境和传感器噪声。由于原始的多层结构和创新的自由层图案,TMR 传感器在未冷却状态下的 0.2 至 100 Hz 频带内的平均磁检测灵敏度确认为 14.1 pT。通过使用 288 个 TMR 传感器构建传感器阵列并应用信号空间分离 (SSS) 的数学磁屏蔽技术,我们确认 SSS 将环境磁场噪声降低了-73 dB,超过了一般的三重磁屏蔽室。此外,通过应用数字处理,对一分钟内心脏磁场的信号平均和投影操作进行组合,我们成功地将传感器噪声降低了约-23 dB。在办公楼实验室中的一位受试者身上测量的心脏磁场分辨率为 0.99 pT,获得了与 SQUID 磁心图仪一样清晰的 QRS 和 ST 段的磁心图和电流箭头图。利用其优越的空间分辨率,该磁心图仪有望成为缺血性心脏病早期诊断和由室性心律失常引发的猝死风险管理的重要工具。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9bab/9866167/7fc1a74896e6/sensors-23-00646-g0A1.jpg

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