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

被引:12
作者
Yang, Mingpeng [1 ,2 ]
Huang, Zhe [1 ,2 ]
You, Hui [1 ]
机构
[1] Chinese Acad Sci, Inst Intelligent Machines, Hefei 230031, Anhui, Peoples R China
[2] Univ Sci & Technol China, Hefei 230026, Anhui, Peoples R China
关键词
electrophoresis; microchip; plug-in structure; CAPILLARY-ELECTROPHORESIS; INTEGRATED ELECTRODES; FABRICATION; LITHIUM; SAMPLES; CHIPS; SERUM; GLASS;
D O I
10.1098/rsos.171687
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
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.
引用
收藏
页数:9
相关论文
共 35 条
[1]   Detection of human immunoglobulin in microchip and conventional capillary electrophoresis with contactless conductivity measurements [J].
Abad-Villar, EM ;
Tanyanyiwa, J ;
Fernández-Abedul, MT ;
Costa-García, A ;
Hauser, PC .
ANALYTICAL CHEMISTRY, 2004, 76 (05) :1282-1288
[2]   Amperometric determination of electroosmotic flow in microchip electrophoresis with a self-generated marker [J].
Chen, Chi-Hao ;
Lin, Meng-Shan .
ELECTROCHIMICA ACTA, 2015, 174 :601-607
[3]   Fabrication of a totally renewable off-channel amperometric platform for microchip electrophoresis [J].
Chen, Chi-Hao ;
Lin, Ya-Ting ;
Lin, Meng-Shan .
ANALYTICA CHIMICA ACTA, 2015, 874 :33-39
[4]  
Crain MM, 2006, METH MOL B, V339, P13, DOI 10.1385/1-59745-076-6:13
[5]  
Du, 2015, NO HORTIC, V23, P173, DOI [10.11937/bfyy.201523048, DOI 10.11937/BFYY.201523048]
[6]   Fast and reliable urine analysis using a portable platform based on microfluidic electrophoresis chips with electrochemical detection [J].
Fernandez-la-Villa, Ana ;
Bertrand-Serrador, Vanesa ;
Pozo-Ayuso, Diego F. ;
Castano-Alvarez, Mario .
ANALYTICAL METHODS, 2013, 5 (06) :1494-1501
[7]   A prefilled, ready-to-use electrophoresis based lab-on-a-chip device for monitoring lithium in blood [J].
Floris, Arjan ;
Staal, Steven ;
Lenk, Stefan ;
Staijen, Erik ;
Kohlheyer, Dietrich ;
Eijkel, Jan ;
van den Berg, Albert .
LAB ON A CHIP, 2010, 10 (14) :1799-1806
[8]   Monitoring of nitrite, nitrate, chloride and sulfate in environmental samples using electrophoresis microchips coupled with contactless conductivity detection [J].
Freitas, Camilla Benevides ;
Moreira, Roger Cardoso ;
de Oliveira Tavares, Maria Gizelda ;
Coltro, Wendell K. T. .
TALANTA, 2016, 147 :335-341
[9]   In-plane alloy electrodes for capacitively coupled contactless conductivity detection in poly(methylmethacrylate) electrophoretic chips [J].
Gaudry, Adam J. ;
Breadmore, Michael C. ;
Guijt, Rosanne M. .
ELECTROPHORESIS, 2013, 34 (20-21) :2980-2987
[10]  
Guijt RM, 2001, ELECTROPHORESIS, V22, P235, DOI 10.1002/1522-2683(200101)22:2<235::AID-ELPS235>3.0.CO