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多通道聚酰亚胺电极的互连采用各向异性导电膜(ACFs),用于生物医学应用。

Interconnection of multichannel polyimide electrodes using anisotropic conductive films (ACFs) for biomedical applications.

机构信息

School of Electrical Engineering and the Department of Biomedical Engineering, College of Health Science, Korea University, Seoul 136-703, Korea.

出版信息

IEEE Trans Biomed Eng. 2011 May;58(5):1466-73. doi: 10.1109/TBME.2010.2102020. Epub 2010 Dec 23.

Abstract

In this paper, we propose a method for interconnecting soft polyimide (PI) electrodes using anisotropic conductive films (ACFs). Reliable and automated bonding was achieved through development of a desktop thermocompressive bonding device that could simultaneously deliver appropriate temperatures and pressures to the interconnection area. The bonding conditions were optimized by changing the bonding temperature and bonding pressure. The electrical properties were characterized by measuring the contact resistance of the ACF bonding area, yielding a measure that was used to optimize the applied pressure and temperature. The optimal conditions consisted of applying a pressure of 4 kg f/cm(2) and a temperature of 180 °C for 20 s. Although ACF base bonding is widely used in industry (e.g., liquid crystal display manufacturing), this study constitutes the first trial of a biomedical application. We performed a preliminary in vivo biocompatibility investigation of ACF bonded area. Using the optimized temperature and pressure conditions, we interconnected a 40-channel PI multielectrode device for measuring electroencephalography (EEG) signals from the skulls of mice. The electrical properties of electrode were characterized by measuring the impedance. Finally, EEG signals were measured from the mice skulls using the fabricated devices to investigate suitability for application to biomedical devices.

摘要

在本文中,我们提出了一种使用各向异性导电膜(ACF)连接软聚酰亚胺(PI)电极的方法。通过开发一种桌面热压设备,实现了可靠和自动化的键合,该设备可以同时向连接区域提供适当的温度和压力。通过改变键合温度和键合压力来优化键合条件。通过测量 ACF 键合区域的接触电阻来表征其电性能,得出了一个用于优化施加压力和温度的指标。最佳条件为施加 4kgf/cm2 的压力和 180°C 的温度 20 秒。尽管 ACF 基键合在工业中(例如,液晶显示器制造)得到了广泛应用,但本研究首次尝试了生物医学应用。我们对 ACF 键合区域进行了初步的体内生物相容性研究。使用优化的温度和压力条件,我们将用于测量来自小鼠颅骨的脑电图(EEG)信号的 40 通道 PI 多电极装置互连起来。通过测量阻抗来表征电极的电性能。最后,使用制造的设备从小鼠颅骨上测量 EEG 信号,以研究其在生物医学设备中的适用性。

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