Chang Chin-Lung, Leong Jik-Chang, Hong Ting-Fu, Wang Yao-Nan, Fu Lung-Ming
Department of Vehicle Engineering, National Pingtung University of Science and Technology, Pingtung 912, Taiwan; E-Mails:
Int J Mol Sci. 2011;12(6):3594-605. doi: 10.3390/ijms12063594. Epub 2011 Jun 3.
This study presents an experimental and numerical investigation on the use of high-resolution injection techniques to deliver sample plugs within a capillary electrophoresis (CE) microchip. The CE microfluidic device was integrated into a U-shaped injection system and an expansion chamber located at the inlet of the separation channel, which can miniize the sample leakage effect and deliver a high-quality sample plug into the separation channel so that the detection performance of the device is enhanced. The proposed 45° U-shaped injection system was investigated using a sample of Rhodamine B dye. Meanwhile, the analysis of the current CE microfluidic chip was studied by considering the separation of Hae III digested ϕx-174 DNA samples. The experimental and numerical results indicate that the included 45° U-shaped injector completely eliminates the sample leakage and an expansion separation channel with an expansion ratio of 2.5 delivers a sample plug with a perfect detection shape and highest concentration intensity, hence enabling an optimal injection and separation performance.
本研究对在毛细管电泳(CE)微芯片内使用高分辨率进样技术输送样品塞进行了实验和数值研究。CE微流控装置集成到一个U形进样系统和位于分离通道入口处的扩展腔中,该系统可以将样品泄漏效应降至最低,并将高质量的样品塞输送到分离通道中,从而提高装置的检测性能。使用罗丹明B染料样品对所提出的45°U形进样系统进行了研究。同时,通过考虑Hae III消化的ϕx-174 DNA样品的分离,对当前的CE微流控芯片进行了分析。实验和数值结果表明,所包含的45°U形进样器完全消除了样品泄漏,扩展比为2.5的扩展分离通道输送出具有完美检测形状和最高浓度强度的样品塞,从而实现了最佳的进样和分离性能。