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首页> 外文期刊>Analytical and bioanalytical chemistry >A microsystem of low-voltage-driven electrophoresis on microchip with array electrode pairs for the separation of amino acids
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A microsystem of low-voltage-driven electrophoresis on microchip with array electrode pairs for the separation of amino acids

机译:带有阵列电极对的微芯片上低压驱动电泳的微系统,用于分离氨基酸

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In this paper, a new approach for the separation of amino acids on the electrophoresis chip-based low-voltage-driven electrophoresis was reported in detail. This low-voltage-driven electrophoresis process could be realized by powering directly the arrayed electrode pairs with low direct current (DC) voltage to generate a moving electric field along the separation microchannel, which could maintain enough electric field strength for electrophoresis. The proposed microfluidic electrophoresis chip was bonded directly with silicon-on-insulator (SOI) substrate and polydimethylsiloxane (PDMS) cover plate at room temperature. The microfluidic channels and the arrayed electrodes were etched on SOI wafer by silicon microelectromechanical system technology. A specially integrated circuit was proposed to power a 30-60-V DC voltage to particular sets of these electrode pairs in a controlled sequence such that the moving electric field could be formed, and the low-voltage-driven electrophoresis could be realized in the microchannel. In the experiments, with 10~(-4) mol/L phenylalanine and lysine as analytes, the separation of amino acids on the low-voltage-driven electrophoresis microchip was conducted by homemade integrated control circuit; a method for separating amino acids was well established. It was also shown that the phenylalanine and lysine mixture was effectively separated in less than 7 min and with a resolution of 2.0. To the best of our knowledge, the low-voltage-driven microchip electrophoresis device could be of potential prospective in the fields of integrated and miniaturized biochemical analysis system.
机译:本文详细报道了一种基于电泳芯片的低压驱动电泳分离氨基酸的新方法。这种低电压驱动的电泳过程可以通过以低直流(DC)电压直接为阵列电极对供电,以沿着分离微通道产生移动电场来实现,该电场可以为电泳保持足够的电场强度。所提出的微流体电泳芯片在室温下直接与绝缘体上硅(SOI)基板和聚二甲基硅氧烷(PDMS)盖板结合。通过硅微机电系统技术在SOI晶片上刻蚀微流体通道和排列的电极。提出了一种特殊的集成电路,以受控的顺序向这些电极对的特定组提供30-60V的直流电压,从而可以形成移动电场,并可以在电极中实现低压驱动的电泳。微通道。实验中,以10〜(-4)mol / L苯丙氨酸和赖氨酸为分析物,采用自制的集成控制电路对低压驱动电泳芯片上的氨基酸进行分离。建立了分离氨基酸的方法。还显示苯丙氨酸和赖氨酸的混合物在不到7分钟的时间内有效分离,分离度为2.0。据我们所知,低压驱动微芯片电泳仪在集成化和微型化生化分析系统领域可能具有潜在的应用前景。

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