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A 3D-Printed Sensor for Monitoring Biosignals in Small Animals

机译:用于监测小动物生物的3D印刷传感器

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摘要

Although additive manufacturing technologies, also known as 3D printing, were first introduced in the 1980s, they have recently gained remarkable popularity owing to decreased costs. 3D printing has already emerged as a viable technology in many industries; in particular, it is a good replacement for microfabrication technology. Microfabrication technology usually requires expensive clean room equipment and skilled engineers; however, 3D printing can reduce both cost and time dramatically. Although 3D printing technology has started to emerge into microfabrication manufacturing and medical applications, it is typically limited to creating mechanical structures such as hip prosthesis or dental implants. There have been increased interests in wearable devices and the critical part of such wearable devices is the sensing part to detect biosignals noninvasively. In this paper, we have built a 3D-printed sensor that can measure electroencephalogram and electrocardiogram from zebrafish. Despite measuring biosignals noninvasively from zebrafish has been known to be difficult due to that it is an underwater creature, we were able to successfully obtain electrophysiological information using the 3D-printed sensor. This 3D printing technique can accelerate the development of simple noninvasive sensors using affordable equipment and provide an economical solution to physiologists who are unfamiliar with complicated microfabrication techniques.
机译:尽管在20世纪80年代首次推出了添加剂制造技术,也称为3D打印,但由于成本降低,它们最近获得了显着的普及。 3D印刷已经成为许多行业的可行技术;特别是,对微制造技术进行了良好的替代品。微型制造技术通常需要昂贵的洁净室设备和技术工程师;然而,3D打印可以显着降低成本和时间。尽管3D打印技术已经开始出现进入微型制造制造和医疗应用,但通常限于创造诸如髋关节假体或牙科植入物的机械结构。可穿戴装置的兴趣增加,这种可穿戴装置的关键部分是无侵入性检测生物信号的传感部分。在本文中,我们建立了一种3D印刷传感器,可以测量斑马鱼的脑电图和心电图。尽管从斑马鱼中毫无侵略地衡量生物信息,但由于它是一种水下生物,我们能够使用3D印刷传感器成功地获得电生理信息。这种3D打印技术可以使用经济实惠的设备加速简单的非侵入性传感器的开发,并为不熟悉的微型微制造技术提供经济的生理学家提供经济的解决方案。

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