心磁图
电气工程
磁强计
计算机科学
噪音(视频)
电子工程
信号(编程语言)
声学
工程类
物理
人工智能
磁场
量子力学
图像(数学)
程序设计语言
作者
Eric Elzenheimer,P. R. Hayes,Lars Thormählen,Erik Engelhardt,Adrian Zaman,Eckhard Quandt,Norbert Frey,Michael Höft,Gerhard Schmidt
标识
DOI:10.1109/jsen.2023.3237910
摘要
In principle, electrode-based bioelectrical signal acquisition can be complemented by biomagnetic sensing and therefore requires a more detailed assessment, especially because of the availability of novel noncryogenic sensor technologies. The current development of thin-film magnetoelectric (ME) sensors ensures that ME technology is becoming a prospective candidate for biomagnetometry. The main obstacle for large-scale usage is the lack of extremely low noise floors at the final sensor system output. This article highlights the current state of ME sensor development based on a magnetocardiography (MCG) pilot study involving a healthy volunteer in a magnetically shielded chamber. For assessment, an ME prototype (converse ME thin-film sensors) will be applied for the first time. This sensor type ensures a noise amplitude spectral density below 20 pT / $\sqrt {\text {Hz}}$ at 10 Hz by using a sophisticated magnetic layer system. The main aim of this pilot study is to evaluate the applicability of this promising sensor for the detection of a human heart signal and to evaluate the sensor output with competitive optical magnetometry technology. A magnetic equivalent of a human R wave could be successfully detected within a 1-min measurement period with the sensor presented here. Finally, the article will provide an outlook on future ME perspectives and challenges, especially for cardiovascular applications.
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