Electrode fabrication using conductive nano-ink and microfluidic technology for bio-applications

被引:0
作者
Matsuura, Koji [1 ]
Sugimoto, Ikuyo [1 ]
Kodama, Mieko [1 ]
Kanehara, Masayuki [1 ]
机构
[1] Okayama Univ, Res Core Interdisciplinary Sci, Kita Ku, Okayama, Japan
来源
2012 INTERNATIONAL SYMPOSIUM ON MICRO-NANOMECHATRONICS AND HUMAN SCIENCE (MHS) | 2012年
关键词
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中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Printed electronics technology, which is used to economically prepare printing conductive patterns onto flexible materials, is both fundamental and crucial for the successful integration of electronics with textiles or fluidics. Conductive channels can be prepared using conventional printing technologies and conductive inks. These preparation methods would cost less, and they are convenient for prototyping of microdevices. The use of hydrophilic organic-inorganic hybrid nanoparticles (NPs), dispersed in water, enables the simplification of the electrode preparation process at room temperature. In this study, we developed a transparent breadboard and NP microelectrodes in the microfluidic channel to measure the number of particles. The electrode fabrication in the microfluidic channel can be acquired using conventional laboratory equipment without the need for expensive ultra-vacuum deposition instruments. We integrated the equipment with electrical measurement systems to count cells and/or microparticles. By using a parallel electric-circuit model (diluted case) or Langmuir isotherm model (saturated case), the particle concentration between two NP electrodes can be analyzed by measuring the capacitance of the total circuit. The microfluidic fabrication of electrodes and electrical measurement technologies may be potentially applied to the technology for micro-nano fluidics and bio-applications such as cell counting or ion sensing.
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页码:35 / 40
页数:6
相关论文
共 14 条
  • [1] Blanchet G, 2003, J IMAGING SCI TECHN, V47, P296
  • [2] Fabricating small-scale, curved, polymeric structures with convex and concave menisci through interfacial free energy equilibrium
    Cheng, Chao-Min
    Matsuura, Koji
    Wang, I-Jan
    Kuroda, Yuka
    LeDuc, Philip R.
    Naruse, Keiji
    [J]. LAB ON A CHIP, 2009, 9 (22) : 3306 - 3309
  • [3] Cheng S., 2012, LAB CHIP IN PRESS, V12
  • [4] Carbon nanotube films for transparent and plastic electronics
    Gruner, G.
    [J]. JOURNAL OF MATERIALS CHEMISTRY, 2006, 16 (35) : 3533 - 3539
  • [5] Kanehara M., 2012, B CHEM SOC IN PRESS
  • [6] Gold(0) porphyrins on gold nanoparticles
    Kanehara, Masayuki
    Takahashi, Hirokazu
    Teranishi, Toshiharu
    [J]. ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2008, 47 (02) : 307 - 310
  • [7] Matsuura K., 2011, 2011 International Symposium on Micro-NanoMechatronics and Human Science (MHS 2011), P99, DOI 10.1109/MHS.2011.6102167
  • [8] Screening of sperm velocity by fluid mechanical characteristics of a cyclo-olefin polymer microfluidic sperm-sorting device
    Matsuura, Koji
    Takenami, Mami
    Kuroda, Yuka
    Hyakutake, Toru
    Yanase, Shinichiro
    Naruse, Keiji
    [J]. REPRODUCTIVE BIOMEDICINE ONLINE, 2012, 24 (01) : 109 - 115
  • [9] Hydrophobic Silicone Elastomer Chamber for Recording Trajectories of Motile Porcine Sperms without Adsorption
    Matsuura, Koji
    Kuroda, Yuka
    Yamashita, Keisuke
    Funahashi, Hiroaki
    [J]. JOURNAL OF REPRODUCTION AND DEVELOPMENT, 2011, 57 (01) : 163 - 167
  • [10] Printed electronics: the challenges involved in printing devices, interconnects, and contacts based on inorganic materials
    Perelaer, Jolke
    Smith, Patrick J.
    Mager, Dario
    Soltman, Daniel
    Volkman, Steven K.
    Subramanian, Vivek
    Korvink, Jan G.
    Schubert, Ulrich S.
    [J]. JOURNAL OF MATERIALS CHEMISTRY, 2010, 20 (39) : 8446 - 8453