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Reliability-Driven Chip-Level Design for High-Frequency Digital Microfluidic Biochips

机译:高频数字微流控生物芯片的可靠性驱动芯片级设计

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Electrowetting-on-dielectric (EWOD) chips have emerged as popular actuators for droplet-based digital microfluidic biochips. The chip-level design of EWOD chips allows for the integration electrode addressing and wire routing, thus helping cope with the increasing complexity of biochemical assays. Furthermore, high-frequency EWODs also facilitate finishing time-sensitive bioassays such as incubation and emerging flash chemistry in specific time periods. However, the reliability of the EWOD chip is reduced by the contact angle change reduction problem as a result of the repeated and frequent switching of electrodes. Thus, the chip-level design of EWOD chips should consider reliability, electrode addressing, and the wire routing problem. This paper presents a graph-based chip-level design algorithm. By setting the switching-time constraint, the number of switching times can be limited to minimize the impact of the contact angle change reductions problem. Also, a progressive addressing and routing approach is proposed to overcome the complex wire routing problem. Experimental results show the proposed algorithm effectively minimizes the impact of the contact angle change reduction problem, thus providing a reliable chip-level design with a feasible wire routing solution with the required number of pins.
机译:介电上电润湿(EWOD)芯片已成为基于液滴的数字微流控生物芯片的流行执行器。 EWOD芯片的芯片级设计允许集成电极寻址和导线布线,从而有助于应对日益增加的生化分析复杂性。此外,高频EWOD还有助于完成对时间敏感的生物测定,例如在特定时间段内的孵育和新兴的快速化学反应。然而,由于电极的反复频繁切换,接触角变化减小问题降低了EWOD芯片的可靠性。因此,EWOD芯片的芯片级设计应考虑可靠性,电极寻址和布线问题。本文提出了一种基于图的芯片级设计算法。通过设置切换时间约束,可以限制切换次数,以最大程度地减小接触角变化减小问题的影响。此外,提出了一种渐进式寻址和路由方法来克服复杂的布线问题。实验结果表明,该算法有效地减小了接触角变化减小问题的影响,从而提供了一种可靠的芯片级设计,并提供了一种可行的带有所需引脚数的布线解决方案。

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