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A plug-in electrophoresis microchip with PCB electrodes for contactless conductivity detection

机译:具有PCB电极的插入式电泳微芯片用于非接触式电导率检测

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摘要

A plug-in electrophoresis microchip for large-scale use aimed at improving maintainability with low fabrication and maintenance costs is proposed in this paper. The plug-in microchip improves the maintainability of a device because the damaged microchannel layer can be changed without needing to cut off the circuit wires in the detection component. Obviously, the plug-in structure reduces waste compared with earlier microchips; at present the whole microchip has to be discarded, including the electrode layer and the microchannel layer. The fabrication cost was reduced as far as possible by adopting a steel template and printed circuit board electrodes that avoided the complex photolithography, metal deposition and sputtering processes. The detection performance of our microchip was assessed by electrophoresis experiments. The results showed an acceptable gradient and stable detection performance. The effect of the installation shift between the microchannel layer and the electrode layer brought about by the plug-in structure was also evaluated. The results indicated that, as long as the shift was controlled within a reasonable scope, its effect on the detection performance was acceptable. The plug-in microchip described in this paper represents a new train of thought for the large-scale use and design of portable instruments with electrophoresis microchips in the future.
机译:本文提出了一种插入式电泳微芯片,旨在以较低的制造和维护成本提高可维护性。插入式微芯片提高了设备​​的可维护性,因为可以更改受损的微通道层而无需切断检测组件中的电路线。显然,与早期的微芯片相比,插入式结构减少了浪费;目前,包括电极层和微通道层在内的整个微芯片都必须丢弃。采用钢模板和印刷电路板电极可最大程度降低制造成本,避免了复杂的光刻,金属沉积和溅射工艺。通过电泳实验评估了我们微芯片的检测性能。结果显示可接受的梯度和稳定的检测性能。还评估了由插入结构带来的在微通道层和电极层之间的安装偏移的影响。结果表明,只要将位移控制在合理范围内,其对检测性能的影响就可以接受。本文介绍的插入式微芯片代表了未来带电泳微芯片的便携式仪器的大规模使用和设计的新思路。

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