Fabrication and validation of a multi-channel type microfluidic chip for electrokinetic streaming potential devices

被引:29
|
作者
Chun, MS [1 ]
Shim, MS [1 ]
Choi, NW [1 ]
机构
[1] Korea Adv Inst Sci & Technol, Complex Fluids Res Lab, Seoul 130650, South Korea
关键词
D O I
10.1039/b514327f
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
To elaborate on the applicability of the electrokinetic micro power generation, we designed and fabricated the silicon-glass as well as the PDMS-glass microfluidic chips with the unique features of a multi-channel. Besides miniaturizing the device, the key advantage of our microfluidic chip utilization lies in the reduction in water flow rate. Both a distributor and a collector taking the tapered duct geometry are positioned aiming the uniform distribution of water flow into all individual channels of the chip, in which several hundreds of single microchannels are assembled in parallel. A proper methodology is developed accompanying the deep reactive ion etching as well as the anodic bonding, and optimum process conditions necessary for hard and soft micromachining are presented. It has been shown experimentally and theoretically that the silicon-based microchannel leads to increasing streaming potential and higher external current compared to those of the PDMS-based one. A proper comparison between experimental results and theoretical computations allows justification of the validity of our novel devices. It is useful to recognize that a material inducing a higher magnitude of zeta potential has an advantage for obtaining higher power density under the same external resistance.
引用
收藏
页码:302 / 309
页数:8
相关论文
共 50 条
  • [31] Optimization of VoD streaming scheduling for IPTV multi-channel support
    Chang, Lin-Huang
    Liao, Ming-Yi
    Huang, Yung-Fa
    Lo, Yu-Lung
    FRONTIERS OF HIGH PERFORMANCE COMPUTING AND NETWORKING - ISPA 2007 WORKSHOPS, 2007, 4743 : 295 - +
  • [32] Online Monitoring of Lactate Efflux by Multi-Channel Microfluidic Chip-Mass Spectrometry for Rapid Drug Evaluation
    Liu, Wu
    Lin, Jin-Ming
    ACS SENSORS, 2016, 1 (04): : 344 - 347
  • [33] Precise evaluation of liquid conductivity using a multi-channel microfluidic chip and direct-current resistance measurements
    Noh, Hyowoong
    Lee, Junyeong
    Lee, Chang-Ju
    Jung, Jaedong
    Kang, Jaewoon
    Choi, Muhan
    Baek, Moon-Chang
    Shim, Jae Hoon
    Park, Hongsik
    SENSORS AND ACTUATORS B-CHEMICAL, 2019, 297
  • [34] Delay Optimization for Multi-source Multi-channel Overlay Live Streaming
    Dai, Jie
    Chang, Zhangyu
    Chan, S. -H. Gary
    2015 IEEE INTERNATIONAL CONFERENCE ON COMMUNICATIONS (ICC), 2015, : 6959 - 6964
  • [35] A multi-channel, multi-encoding transmission scheme for wireless video streaming
    Kolekar, Abhijeet
    Feng, Wuchi
    Venkatachalam, Muthaiah
    MULTIMEDIA COMPUTING AND NETWORKING 2007, 2007, 6504
  • [36] Live Demonstration: A Wireless Multi-channel Physiological Signal Acquisition System-on-Chip for Wearable Devices
    Lin, Yu-Shan
    Lee, Sheng-Cheng
    Chen, Yu-Jui
    Huang, Chia-Ming
    Chiueh, Herming
    PROCEEDINGS OF 2016 IEEE BIOMEDICAL CIRCUITS AND SYSTEMS CONFERENCE (BIOCAS), 2016, : 128 - 128
  • [37] Live Demonstration: A Wireless Multi-channel Physiological Signal Acquisition System-on-Chip for Wearable Devices
    Lee, Sheng-Cheng
    Lin, Yu-Shan
    Chen, Yu-Jui
    Chiueh, Herming
    2016 IEEE SENSORS, 2016,
  • [38] Design criteria and applications of multi-channel parallel microfluidic module
    Huang, Yichao
    Han, Tengteng
    Xuan, Jin
    Xu, Hong
    Wang, Yongle
    Zhang, Li
    JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2018, 28 (10)
  • [39] Performance Analysis of Multi-Channel Memories in Mobile Devices
    Nikara, Jan
    Aho, Eero
    Tuominen, Petri A.
    Kuusilinna, Kimmo
    2009 INTERNATIONAL SYMPOSIUM ON SYSTEM-ON-CHIP PROCEEDINGS, 2009, : 128 - +
  • [40] Multi-channel nanowire devices for efficient power conversion
    Nela, L.
    Ma, J.
    Erine, C.
    Xiang, P.
    Shen, T. -H.
    Tileli, V.
    Wang, T.
    Cheng, K.
    Matioli, E.
    NATURE ELECTRONICS, 2021, 4 (04) : 284 - +