• Title/Summary/Keyword: Microfluidic Chip

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Integrated microfluidic device with polymer-based micropump and microvalve for $\mu$-TAS devices (마이크로 펌프, 밸브가 집적된 폴리머 기반의 미세 유체제어 시스템의 기계적 특성 강화)

  • Ra, Gyu-Sik;Jha, Sandeep Kumar;Yoon, Tae-Sik;Lee, Hyun-Ho;Kim, Yong-Sang
    • Proceedings of the KIEE Conference
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    • 2008.07a
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    • pp.1458-1459
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    • 2008
  • 미세 유체 제어 시스템 (마이크로 펌프, 마이크로 밸브, 마이크로 채널, 마이크로 믹서 등)의 집적은 화학 및 바이오 유체를 제어하는 Lab-on-a-chip 의 일부분으로서 사용되며 이러한 시스템의 집적은 Lab-on-a-chip 개발을 위해 필수적으로 요구된다. 본 논문에서는 이러한 microchip을 구현하기 위해서 초미세 유체 제어 소자인 마이크로 펌프와 마이크로 밸브를 같은 기판 위에 Polydimethylsiloxane (PDMS)와 indium tin oxade (ITO)를 사용하여 집적하였다. 그리고 밸브의 반복 작동 시 계속적인 유량의 감소를 줄이기 위해 PDMS 의 혼합비를 달리하여 PDMS membrane 의 기계적 특성을 강화시켰다.

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A Colorimetric Glucose Assay via Concentration Gradient Paper Chip (종이기반 농도 구배 형성 칩을 통한 포도당 발색 반응 검사)

  • Kim, Taehoon H.;Shin, Hyun Young;Lee, Yun-Il;Tae, Ki-Sik;Kim, Minseok S.
    • Journal of Biomedical Engineering Research
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    • v.38 no.6
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    • pp.302-307
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    • 2017
  • This paper presents a paper-based concentration gradient chip to analyze colorimetric glucose assay. The paper-based concentration gradient chip was fabricated through a wax patterning technique that can design the fluidic channel by selectively printing hydrophobic and hydrophilic areas. Afterwards, glucose and dilution solutions were loaded into the inlet of a concentration gradient chip and each solution was then mixed sequentially at mixing channel. Finally, concentration gradient was formed at each outlet of the chip. To measure the glucose concentration of the solution in outlets, we conducted colorimetric glucose assay with fixed concentration of glucose solution (0, 5, 10, 15 and 20 mM) and obtained normalized intensity. Subsequently, glucose concentrations of the outlets were calculated by substituting the normalized intensity to linear regression function based on the normalized intensity of fixed glucose concentration. Finally, the concentration gradient of glucose was formed on the chip with the result of colorimetric assay. The concentration gradient paper chip has the potential to accurately analyze unknown glucose concentration.

Investigation of the Binding Force between Protein A and Immunoglobulin G Using Dielectrophoretic(DEP) Tweezers Inside a Microfluidic Chip (미세유체 칩 내에서 유전영동 집게(Dielectrophoretic Tweezers) 를 이용한 단백질A와 면역 글로불린 G의 결합에 관한 연구)

  • Kwak, Tae Joon;Lee, Jae Woo;Yoon, Dae Sung;Lee, Sang Woo
    • Journal of Biomedical Engineering Research
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    • v.34 no.3
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    • pp.123-128
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    • 2013
  • The 'Dielectrophoretic Tweezers(DEP Tweezers)' can be used as a facile, economical toolkit for quantitative measurement of chemical and biological binding forces related to many biological interactions within a microfluidic device. Our experimental setup can probe the interaction between a single receptor molecule and its specific ligand. Immunoglobulin G(IgG) functionalized on polystyrene microspheres has been used to detect individual surface linked Staphylococcus protein A(SpA) molecules and to characterize the strength of the noncovalent IgG-SpA bond. It was measured and compared with the existing measurements. Measured single binding force of between Goat, Rabbit IgG and SpA were $17{\pm}7pN$, $74{\pm}16pN$. This work can be used to investigate several different ligand-receptor interactions and antigen-antibody interactions.

Flow Visualization of the Flow inside the Droplet Passing through a Straight and a Diverging Channel (직선채널과 확대채널에서의 액적 내부 유동 가시화)

  • Jin, Byung-Ju;Kim, Young-Won;Yoo, Jung-Yul
    • 한국가시화정보학회:학술대회논문집
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    • 2007.11a
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    • pp.71-76
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    • 2007
  • Flow visualization of a droplet passing through a straight channel and a diverging channel has been carried out using micro-PIV. Diverging channel is frequently used in lab-on-a-chip and microfluidic devices, where flow pattern inside the droplet passing is quite different from that through a straight channel. In the present study, we visualized the droplet flow in three different regions. The first region is where the droplet has a wide contact area with the channel wall, the second region is characterized with a narrow contact area and the third region is where droplet is detached from the channel wall. Visualization results show that the internal flow inside the droplet passing through the straight channel moves in the opposite direction to the droplet velocity in the near wall exhibiting complex flow patterns. But in the diverging channel the internal flow inside the droplet moves in the same direction as the droplet velocity due to the shear induced by oil phase flow exhibiting rather simple flow pattern.

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Terahertz Spectral Characteristics of Electrolyte Solutions under Different Magnetic Fields

  • Shao, Siyu;Huang, Haiyun;Peng, Bo;Wang, Guoyang;Ye, Ping;Wang, Jiahui;Su, Bo;Cui, Hailin;Zhang, Cunlin
    • Current Optics and Photonics
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    • v.6 no.3
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    • pp.337-343
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    • 2022
  • Microfluidic chips are new devices that can manipulate liquids at the micrometer level, and terahertz (THz) time-domain spectroscopy has good applicability in biochemical detection. The combination of these two technologies can shorten the distance between sample and THz wave, reduce THz wave absorption by water, and more effectively analyze the kinetics of biochemical reactions in aqueous solutions. This study investigates the effects of different external magnetic field intensities on the THz transmission characteristics of deionized water, CuSO4, CuCl2, (CH3COO)2Cu, Na2SO4, NaCl, and CH3COONa; the THz spectral intensity of the sample solutions decrease with increasing intensity of the applied magnetic field. Analysis shows that the magnetic field leads to a change in the dipole moment of water molecules in water and electrolyte solutions, which enhances not only the hydrogen-bond networking ability of water but also the hydration around ions in electrolyte solutions, increasing the number of hydrogen bonds. Increasing the intensity of this magnetic field further promotes the hydrogen-bond association between water molecules, weakening the THz transmission intensity of the solution.

Lysozyme Crystallization in Droplet-based Microfluidic Device (액적기반 미세유체장치에서 라이소자임 결정화)

  • Ko, Kwan-Young;Kim, In-Ho
    • Korean Chemical Engineering Research
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    • v.51 no.6
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    • pp.760-765
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    • 2013
  • Lysozyme crystallization was performed by using flow-focusing chip in droplet-based microfluidic system. Water-in-oil droplets were formed in the system and collected on petri-dish and cross type mold. Liquid-liquid reaction of lysozyme and sodium chloride occurred in the droplet and crystals were observed through microscope. Solution pH was varied as 4.8 and 7.2. Crystals of polyhedron and plate-like shape were obtained at pH 4.8, while needle structure crystals formed at pH 7.2. Lysozyme in single droplet for two pHs were crystallized with constant or decreased droplet size. However, crystals at pH 4.8 were only obtained in the droplet of which size was increased by the interaction between droplets. Droplet volume did not change at pH 7.2 and crystals formed in both droplets.

Design and fabrication of paper microfluidic channel (종이기반 미세유체 채널의 설계 및 제작기술)

  • Lee, Jung-Hyun;Hwang, Yoo-Sun;Jung, Hyo-Il
    • Science of Emotion and Sensibility
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    • v.14 no.4
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    • pp.525-530
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    • 2011
  • Emotion is composed of various feelings such as pleasure, sorrow, comfortability, and so on. The complicated process of the measurement has long been recognized as a major hindrance for the studies of emotion. Previously, individuals' emotion has mainly been measured by means of self-report, interview, EEG (electroencephalogram), ECG (electrocardiogram), EOG (electroculography), and body temperature. With thanks to nano/micro technologies, the possibility in the development of emotion-on-a-chip (EOC) has begun to be proposed. EOC will make it possible to analyze one's psychological status by taking a drop of blood. Discovery of emotional biomarkers in body fluids, understanding of the correlation between those biomarkers and the results from brain science are prerequisites to validate the EOC technology. In this paper, paper microfluidics are introduced as a good candidate for the EOC. As paper microfluidics is cost-effective and easy to use it is expected to be a useful device for the emotion measurement. We present the design and fabrication process for the simple paper-based microfluidic device and discuss the possible application in the field of measuring the human emotion.

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