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Rapid prototyping of paper-based electronics by robotic printing and micromanipulation

机译:通过机器人打印和显微操作对纸质电子产品进行快速原型制作

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The fabrication techniques of paper-based electronics have been widely explored in the past two decades, contributing to the wide application of these promising devices in a variety of fields. In this paper, we report a new rapid prototyping technique for constructing paper-based field-effect transistor (FET) biosensors integrating rolled-up semiconductor microtubes. Leveraging robotic printing and micromanipulation techniques, silver ink electrodes are printed on paper and pre-synthesized microtubes are transferred onto a pair of printed electrodes to form a complete FET. Compared with existing fabrication techniques of paper-based electronics that purely rely on printing, the proposed technique is more versatile in that it can rapidly integrate high-performance semiconductor microtubes onto paper substrates. To improve the printing uniformity, a time-shift mechanism is proposed to compensate the ink under-and over-dispersion at the beginning and end of the printing process, respectively. To realize automated microtube pick-up and transfer, image processing and motion control algorithms are developed to detect positions of the end-effector (a glass needle) and the microtube, and to control motions of the glass needle with minimized human intervention. We demonstrate the effectiveness of the technique by fabricating the designed paper-based devices using bimetallic microtubes and measure their current-voltage characteristics.
机译:在过去的二十年中,纸基电子产品的制造技术得到了广泛的探索,为这些有前途的设备在各个领域的广泛应用做出了贡献。在本文中,我们报告了一种新的快速成型技术,该技术用于构建集成了卷起的半导体微管的基于纸的场效应晶体管(FET)生物传感器。利用自动打印和微处理技术,将银墨电极印刷在纸上,并将预先合成的微管转移到一对印刷电极上,以形成完整的FET。与仅依靠印刷的纸基电子产品的现有制造技术相比,该提议的技术更具通用性,因为它可以将高性能的半导体微管快速集成到纸质基板上。为了提高打印均匀性,提出了一种时移机制,以分别补偿打印过程开始和结束时墨水的欠分散和过度分散。为了实现微管的自动拾取和传输,开发了图像处理和运动控制算法来检测末端执行器(玻璃针)和微管的位置,并以最少的人工干预来控制玻璃针的运动。我们通过使用双金属微管制造设计好的纸基设备并测量其电流-电压特性来证明该技术的有效性。

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