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一种高导电性、高分辨率和高耐用性织物电路制备工艺
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作者 陈瑶 陈远汾 许珂 《电子元件与材料》 CAS 北大核心 2024年第7期796-803,共8页
可穿戴设备已成为一种用于长期、连续监测生理电信号的重要手段,然而开发具备良好舒适性、高效导电性及长期稳定性的柔性电路仍面临显著挑战。为了促进可穿戴设备的发展,该研究提出一种织物电路制备工艺,该工艺通过磁控溅射将铜沉积在... 可穿戴设备已成为一种用于长期、连续监测生理电信号的重要手段,然而开发具备良好舒适性、高效导电性及长期稳定性的柔性电路仍面临显著挑战。为了促进可穿戴设备的发展,该研究提出一种织物电路制备工艺,该工艺通过磁控溅射将铜沉积在图案化的聚酰亚胺(PI)/织物基底上,然后在铜的表面蒸镀派瑞林薄膜作为保护。图案化的PI薄膜不仅有利于铜的沉积,而且保持织物的透气性。该工艺可以制备最小线宽为0.4 mm的导线,织物导线的电阻率为8.25×10^(-7)Ω·m;经过1000次弯曲实验,织物导线的电阻增长率约55.72%;经过10次洗涤后,电阻增加47.04%。该研究可以在织物上制备高导电性、抗疲劳、可洗涤和高分辨率的柔性电路,使生理电信号采集电路可以集成到衣服表面。 展开更多
关键词 可穿戴设备 图案化 磁控溅射 织物电路 抗疲劳 可洗涤 高分辨率
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不锈钢丝包芯纱针织电路的性能研究
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作者 王瑾 缪旭红 《针织工业》 北大核心 2022年第9期27-30,共4页
为了改善金属裸丝在可穿戴设备电路中应用的不足,利用多功能细纱机纺制不锈钢丝包芯纱。以3股单根直径为0.02 mm的超细不锈钢丝为芯丝,棉短纤作为鞘层制备包芯纱,并进一步制备针织物电路,对包芯纱及针织物电路的力学及电学性能等进行测... 为了改善金属裸丝在可穿戴设备电路中应用的不足,利用多功能细纱机纺制不锈钢丝包芯纱。以3股单根直径为0.02 mm的超细不锈钢丝为芯丝,棉短纤作为鞘层制备包芯纱,并进一步制备针织物电路,对包芯纱及针织物电路的力学及电学性能等进行测试。结果表明:不锈钢丝包芯纱断裂强度接近不锈钢裸丝,且包芯纱芯丝具有与不锈钢裸丝相近的电学性能;不锈钢丝包芯纱具有较好的编织性能,可用于针织物电路的制备;由于弹性纱的引入及针织物特殊的线圈结构,织物电路具有较好的弹性回复性;不锈钢丝包芯纱制备的织物电路在单向拉伸时具有优异的导电稳定性;织物电路可用于传感器的连接并传输信号。 展开更多
关键词 不锈钢丝 包芯纱 织物电路 稳定性 拉伸性能
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Highly-compliant,conformal and stretchable microelectrode arrays 被引量:1
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作者 Zhang Hongzhi Xie Lei +3 位作者 Yu Mei Liu Zhiyuan Li Yuchun Yu Zhe 《Engineering Sciences》 EI 2013年第3期72-75,共4页
Most biological tissues are supple and elastic, while current electronic devices fabricated by semiconductors and metals are usually stiff and brittle. As a result, implanted electronic devices can irritate and damage... Most biological tissues are supple and elastic, while current electronic devices fabricated by semiconductors and metals are usually stiff and brittle. As a result, implanted electronic devices can irritate and damage surrounding tissues, causing immune reaction and scarring. In this work, we develop stretchable microelectrode arrays, with the development of a novel soft lithography technology, which are designed and fabricated with a polymer/stretchable metal/polymer sandwich structure. With the great deformability of stretch, compression, bend and twisting, while preserving electrical property, this technology overcomes the fundamental mismatch of mechanical properties between biological tissues and electronic devices, and provides highly-compliant, confonnal and stretchable bio-electronic interfaces. Here we also describe the following three applications of the stretchable electrode arrays: a. monitoring intracranial electroencephalography (EEG); b. stimulating peripheral nerves to drive muscles; c. monitoring epicardial electrocardiography (ECG). Stretchable microelectrode arrays create a promising field in biomedical applications for its better modulus match with biological tissues and robust mechanical and electrical properties. They allow for construction of electronic integrated circuits spread over on complex and dynamic curved surfaces, providing a much friendlier bio-electronic interface for diagnosis, treatment and in- telligent bio-control. 展开更多
关键词 biological micro-electro-mechanical system (bioMEMS) microelectrode array EEG neural prosthesis ECG
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