Electroosmotic flow in 'click' surface modified microfluidic channels

被引:0
|
作者
Prakash, Shaurya [1 ]
Long, Timothy M. [1 ]
Wan, Jonathan [1 ]
Moore, Jeffrey S. [1 ]
Shannon, Mark A. [1 ]
机构
[1] Univ Illinois, Dept Mech & Ind Engn, Urbana, IL 61801 USA
关键词
D O I
暂无
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
A rapid, facile, and modular surface modification scheme for the covalent attachment of pre-formed polymer moieties to self-assembled monolayers via 'click' chemistry within glass microfluidic channels (3 cm long, 110 mu m wide and 15 mu m deep) is described. The effect that different moieties have on the electroosmotic flow (EOF) within the microchannels is evaluated. The application of linear polymers such as poly(ethylene glycol) (PEG) generates hydrophilic surfaces that reduce the analyte-wall interactions, thereby increasing separation efficiency and improving resolution, especially in bio-separations. Dendritic polymers such as poly(amido amine) (PAMAM) on channel walls can provide high-surface area structures with tunable surface charge depending on the generation of the dendrimer coating. Modified surfaces are characterized by X-ray photoelectron spectroscopy (XPS), Fourier Transform Infrared-Attenuated Total Reflection spectroscopy (FTIR-ATR), and contact angle measurements. EOF measurements in modified and unmodified channels provide information about wall-analyte interactions. A PAMAM dendrimer coated channel presents an amine terminated surface with a positive charge in contrast to a negatively charged bare-glass surface. Use of surface coatings can lead to an increase of the EOF by 15% as is the case for an azide terminated surface or reverse the direction of EOF as is the case for the PAMAM coatings by changing the surface charge polarity.
引用
收藏
页码:249 / 255
页数:7
相关论文
共 50 条
  • [41] Microinjection in a microfluidic format using flexible and compliant channels and electroosmotic dosage control
    Noori, Arash
    Selvaganapathy, P. Ravi
    Wilson, Joanna
    LAB ON A CHIP, 2009, 9 (22) : 3202 - 3211
  • [42] Smart multilayer coatings for controlling electroosmotic flow in microfluidic devices.
    Sui, ZJ
    Jumaa, H
    Schlenoff, J
    ABSTRACTS OF PAPERS OF THE AMERICAN CHEMICAL SOCIETY, 2004, 227 : U525 - U525
  • [43] Numerical simulation and experimental study of the electroosmotic flow in open microfluidic chip based on super-wettability surface
    Jiang, Shuyue
    Zhang, Haifeng
    Chen, Liang
    Li, Yiping
    Sang, Shengtian
    Liu, Xiaowei
    COLLOID AND INTERFACE SCIENCE COMMUNICATIONS, 2021, 45
  • [44] Microfluidic programmable strategies for channels and flow
    Song, Yongxian
    Zhou, Yijiang
    Zhang, Kai
    Fan, Zhaoxuan
    Zhang, Fei
    Wei, Mingji
    LAB ON A CHIP, 2024, 24 (19) : 4483 - 4513
  • [45] A Novel Method for the Direct Measurement of Electroosmotic Flow Velocity on Microfluidic Chips
    Sun Yue
    Shen Zhibin
    Zeng Changqing
    CHINESE JOURNAL OF CHROMATOGRAPHY, 2007, 25 (05) : 690 - 693
  • [46] Microfluidic T-form mixer utilizing switching electroosmotic flow
    Lin, CH
    Fu, LM
    Chien, YS
    ANALYTICAL CHEMISTRY, 2004, 76 (18) : 5265 - 5272
  • [47] INTERFACIAL FLOW VISUALIZATION IN MICROFLUIDIC CHANNELS
    Saha, Auro Ashish
    Mitra, Sushanta K.
    PROCEEDINGS OF THE 6TH INTERNATIONAL CONFERENCE ON NANOCHANNELS, MICROCHANNELS, AND MINICHANNELS, PTS A AND B, 2008, : 765 - 775
  • [48] Flow Batteries for Microfluidic Networks: Configuring An Electroosmotic Pump for Nonterminal Positions
    He, Chiyang
    Lu, Joann J.
    Jia, Zhijian
    Wang, Wei
    Wang, Xiayan
    Dasgupta, Purnendu K.
    Liu, Shaorong
    ANALYTICAL CHEMISTRY, 2011, 83 (07) : 2430 - 2433
  • [49] Assessment of three AC electroosmotic flow protocols for mixing in microfluidic channel
    Chen, Jia-Kun
    Weng, Chi-Neng
    Yang, Ruey-Jen
    LAB ON A CHIP, 2009, 9 (09) : 1267 - 1273
  • [50] Microfluidic mixing using periodically induced secondary potential in electroosmotic flow
    Jeong, Siyoung
    Park, Jungyul
    Kim, Jimmy M.
    Park, Seungwoo
    JOURNAL OF ELECTROSTATICS, 2011, 69 (05) : 429 - 434