期刊文献+

Improvement Design of Biochip Towards High Stable Bioparticle Detection Utilizing Dielectrophoresis Impedance Measurement

Improvement Design of Biochip Towards High Stable Bioparticle Detection Utilizing Dielectrophoresis Impedance Measurement
下载PDF
导出
摘要 Dielectrophoresis impedance measurement(DEPIM)is a powerful tool for bioparticle detection due to its advantages of high efficiency,label-free and low costs.However,the strong electric field may decrease the viability of the bioparticle,thus leading to instability of impedance measurement.A new design of biochip is presented with high stable bioparticle detection capabilities by using both negative dielectrophoresis(nDEP)and traveling wave dielectrophoresis(twDEP).In the biochip,a spiral electrode is arranged on the top of channel,while a detector is arranged on the bottom of the channel.The influence factors on the DEP force and twDEP force are investigated by using the basic principle of DEP,based on which,the relationship between Clausius-Mossotti(CM)factor and the frequency of electric field is obtained.The two-dimensional model of the biochip is built by using Comsol Multiphysics.Electric potential distribution,force distribution and particle trajectory in the channel are then obtained by using the simulation model.Finally,both the simulations and experiments are performed to demonstrate that the new biochip can enhance the detection efficiency and reduce the negative effects of electric field on the bioparticles. Dielectrophoresis impedance measurement(DEPIM)is a powerful tool for bioparticle detection due to its advantages of high efficiency,label-free and low costs.However,the strong electric field may decrease the viability of the bioparticle,thus leading to instability of impedance measurement.A new design of biochip is presented with high stable bioparticle detection capabilities by using both negative dielectrophoresis(nDEP)and traveling wave dielectrophoresis(twDEP).In the biochip,a spiral electrode is arranged on the top of channel,while a detector is arranged on the bottom of the channel.The influence factors on the DEP force and twDEP force are investigated by using the basic principle of DEP,based on which,the relationship between Clausius-Mossotti(CM)factor and the frequency of electric field is obtained.The two-dimensional model of the biochip is built by using Comsol Multiphysics.Electric potential distribution,force distribution and particle trajectory in the channel are then obtained by using the simulation model.Finally,both the simulations and experiments are performed to demonstrate that the new biochip can enhance the detection efficiency and reduce the negative effects of electric field on the bioparticles.
出处 《Transactions of Nanjing University of Aeronautics and Astronautics》 EI CSCD 2015年第2期143-147,共5页 南京航空航天大学学报(英文版)
基金 supported by the Project of Youth Fund of National Natural Science Foundation (No. 61203208) the National Natural Science Foundation of China(No.61327802)
关键词 dielectrophoresis impedance measurement detection BIOSENSOR dielectrophoresis impedance measurement detection biosensor
  • 相关文献

参考文献8

  • 1Suehiro J, Noutomi D, Shutou M, et al. Selective detection of specific bacteria using dielectrophoretie impedance measurement method combined with an antigen-antibody reaetionI-Jl. Journal of Electrostat- ics, 2003, 58(3): 229 246.
  • 2Yang L. Dielectrophoresis assisted immuno-capture and detection of foodborne pathogenic bacteria in bio- chipsEJ~. Talanta, 2009, 80(2): 551-558.
  • 3Higginbotham S N, Sweatman D R. A combined travelling wave dielectrophoresis and impedance sens- ing device for sensing biological cell suspensionsEJ~. Journal of Physics D: Applied Physics, 2008, 41 (17):1-9.
  • 4Hamada R, Takayama H, Shonishi Y, et aI. A rap- id bacteria detection technique utilizing impedance measurement combined with positive and negative di- electrophoresisFJ]. Sensors and Actuators B: Chemi- cal, 2013, 181:439 445.
  • 5Kang Y, Li D, Kalams S A, et al. DC-dielectro- phoretic separation of biological ceils by size[-J~. Bio- medical Mierodevices, 2008, 10(2) : 243-249.
  • 6Donato S S, Chu V, Prazeres D M F, et al. Meta- bolic viability of Eschcrichia coli trapped by dielectro- phoresis in microfluidics[-J~. Electrophoresis, 2013, 34(4) : 575-582.
  • 7Lewpiriyawong N, Yang C, Lam Y C. Electrokineti- cally driven concentration of particles and cells by di- electrophoresis with DC-offset AC electric field[J~. Microfluidics and Nanofluidies, 2012,12(5) : 723-733.
  • 8Wang X B, Huang Y, Becker F F, et al. A unified theory of dielectrophoresis and travelling wave dielec- trophoresisEJ2. Journal of Physics D: Applied Phys- ics, 1994, 27(7): 1571-1574.

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部