Pereira de Jesus Dosil, Blanes Lucas, do Lago Claudimir Lucio
Departamento de Química Fundamental, Instituto de Química, Universidade de São Paulo, São Paulo, SP, Brazil.
Electrophoresis. 2006 Dec;27(24):4935-42. doi: 10.1002/elps.200600137.
In this work, a microfluidic free-flow electrophoresis device, obtained by thermal toner transferring on glass substrate, is presented. A microdevice can be manufactured in only 1 h. The layout of the microdevice was designed in order to improve the fluidic and electrical characteristics. The separation channel is 8 microm deep and presents an internal volume of 1.42 microL. The deleterious electrolysis effects were overcome by using a system that isolates the electrolysis products from the separation channel. The Joule heating dissipation in the separation channel was found to be very efficient up to a current density of 8.83 mA/mm(2) that corresponds to a power dissipation per unit volume of running electrolyte of 172 mW/microL. Promising results were obtained in the evaluation of the microdevices for the separation of ionic dyes. The microfluidic device can be used for a continuous sample pretreatment step for micro total analysis system.
在这项工作中,展示了一种通过热调色剂转移到玻璃基板上获得的微流控自由流动电泳装置。一个微装置仅需1小时即可制造完成。微装置的布局经过设计以改善流体和电学特性。分离通道深8微米,内部体积为1.42微升。通过使用一种将电解产物与分离通道隔离的系统,克服了有害的电解效应。发现在高达8.83 mA/mm²的电流密度下,分离通道中的焦耳热耗散非常有效,这对应于运行电解质每单位体积的功率耗散为172 mW/微升。在评估用于分离离子染料的微装置方面获得了有前景的结果。该微流控装置可用于微全分析系统的连续样品预处理步骤。