• Title/Summary/Keyword: 바이오 멤스

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Biodevice Technology (바이오소자 기술)

  • Choi, Jeong-Woo;Lee, Bum-Hwan
    • Korean Chemical Engineering Research
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    • v.44 no.1
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    • pp.1-9
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    • 2006
  • Biodevices composed of biomolecular layer by mimicking the natural functions of cells and the interaction mechanisms of the constituted biomolecules have been developed in various industrial fields such as medical diagnosis, drug screening, electronic device, bioprocess, and environmental pollution detection. To construct biodevices such as bioelectronic devices (biomolecular diode, bio-information storage device and bioelectroluminescence device), protein chip, DNA chip, and cell chip, biomolecules including DNA, protein, and cells have been used. Fusion technology consisting of immobilization technology of biomolecules, micro/nano-scale patterning, detection technology, and MEMs technology has been used to construct the biodevices. Recently, nanotechnology has been applied to construct nano-biodevices. In this paper, the current technology status of biodevice including its fabrication technology and applications is described and the future development direction is proposed.

Flow Visualization in Microchannel Using Confocal Scanning Microscope (공초점 주사현미경을 통한 미세 유로에서의 유동 가시화)

  • Chang Jun Keun;Park Sung-Jin;Kim Jung Kyung;Han Dong Chul
    • Journal of the Korean Society of Visualization
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    • v.1 no.1
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    • pp.28-33
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    • 2003
  • This paper presents the visualization method in which 3-dimensional(3D) microchannel flow can be detected using a confocal scanning microscope. By soft-lithography, we fabricated various Bio-MEMS(Micro Electro-Mechanical System) devices such as a disposable microchip for a flow cytometer and a micro-mixer, which have 3D structures. Injecting aqueous fluorescent solution in the microfluidic devices, we measured the flow in a steady state by the confocal scanning microscope. At first, we explain the principle of the confocal scanning microscope. And then we show the results from 3D visualization of microscopic flow structures using the confocal scanning microscope.

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Fabrication of 3-D microchannel for biomems and micro systems application (바이오 멤스 및 마이크로 시스템 적용을 위한 3차원 마이크로 유로 제작)

  • Yun, Kwang-Seok
    • Journal of Sensor Science and Technology
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    • v.15 no.5
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    • pp.357-361
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    • 2006
  • This paper reports a new technology to implement complex PDMS microchannels, which are simply constructed using three-dimensional photoresist structures as mold for PDMS replica process. The process utilizes LOR resist as a sacrificial layer to levitate the structural photoresist and multi-step exposure to control the thicknesses of photoresist structures. Various shapes of photoresist structures were successfully fabricated. Using the PDMS replica method, the three-dimensional photoresist structures are demonstrated to be applicable for implementing complex microchannels in PDMS. In addition, more complex multilevel microchannels are constructed by bonding two PDMS layers with just single PDMS alignment.

Analysis of Resonance Based Micromechanical Bio-Chemical Sensing Structures (공진 기반 마이크로기계 생화학 센싱 구조물의 해석)

  • Yeo, Min-Ku;Shin, Yoon-Hyuck;Yim, Hong-Jae;Lim, Si-Hyung
    • Proceedings of the KSME Conference
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    • 2008.11a
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    • pp.1767-1772
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    • 2008
  • A microcantilever is a well-known MEMS structure for sensing bio-chemical molecules. When bio-chemical molecules are adsorbed on the microcantilever's surface, resonance frequency shift is generated. There are two issues in this phenomena. The first one is which one between mass change and surface stress change effects is more dominant on the resonance frequency shift. The second one is what will be the performance change when the boundary condition is changed from cantilevers to double clamped beams. We have studied the effect of surface stress change and compared it with that of mass change by using FEM analysis. Furthermore, for microstructures having different boundary conditions, we have studied Q-factor, which determines the detection limit of micro/nano mechanical sensors.

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Electrochemical Analysis of Biosensor using Bio-MEMS Technologies for the Detection of Serotonin (바이오멤스기술을 이용한 세로토닌 검출용 바이오센서의 전기화학적 특성 분석)

  • Yun, Dong-Hwa;Song, Min-Jung;Kim, Jong-Hoon;Min, Nam-Ki;Hong, Suk-In
    • Proceedings of the KIEE Conference
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    • 2003.07c
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    • pp.1932-1934
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    • 2003
  • 본 논문은 신경전달물질 중 우울증, 신부전증의 지표 물질인 세로토닌의 농도를 극미량의 시료를 사용하여 정량할 수 있는 방법을 개발하기 위해 초소형 효소 고정화 전극을 개발하였다. 전극은 실리콘 웨이퍼 상에 반도체 공정을 이용하여 마이크로 크기의 Pt 박막 전극을 제작하였고, 전기화학적 방법으로 pyrrole 단량체를 Pt 전극 상에 순환전압전류법을 이용하여 산화적으로 전기 중합하였다. 효소의 고정은 일정 전압을 인가한 시간대 전류법으로 고정화하였다. 제작된 전극은 시간대 전류법으로 세로토닌의 농도에 따른 감도를 측정하였다. 세로토닌의 농도 범위 $1.0{\mu}mol/L{\sim}10mmol/L$에서의 감도는 $7.0{\mu}$A/decade를 나타내었으며, 실험결과에 따라 전극의 표면에서 발생하는 전류는 세로토닌의 농도에 비례함을 알 수 있었다. 전극의 표면분석은 Scanning Electron Microscopy(SEM), Energy Dispersive X-ray Spectroscopy(EDX) 그리고 Auger Electron Spectroscopy(AES)를 이용하여 분석하였다.

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Fabrication and Characterization of Pyrolyzed Carbon for Use as an Electrode Material in Electrochemical Biosensor (전기화학 바이오센서의 전극물질로 응용을 위한 열분해 탄소의 제작 및 특성 연구)

  • Lee, Jung-A.;Hwang, Seong-Pil;Kwak, Ju-Hyoun;Park, Se-Il;Lee, Seung-Seob;Lee, Kwang-Cheol
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.31 no.10
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    • pp.986-992
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    • 2007
  • This paper presents the fabrication and characterization of carbon films pyrolyzed with various photoresists for bioMEMS applications. To verify the usefulness of pyrolyzed carbon films as an electrode material in an electrochemical biosensor developed by the authors, interactions between avidin and biotin on the pyrolyzed carbon film were studied via electrochemical impedance spectroscopy based on electrostatic interactions between avidin and negatively-charged ferricyanide. The pyrolyzed carbon films were characterized using a surface profiler, a precision semiconductor parameter analyzer, a nanoindentor, scanning electron microscopy, and atomic force microscopy. Amine conjugated biotin was immobilized on the electrode using EDC/NHS as crosslinkers after $O_2$ plasma treatment to enhance functional groups on the carbon electrode pyrolyzed at $1000^{\circ}C$ with AZ9260. The detection of avidin binding with different concentrations in a range of 0.75 nM to $7.5\;{\mu}M$ to the pyrolyzed carbon electrode modified with biotin was carried out by measuring the electrochemical impedance change. The results show that avidin binds to the biotin on the electrode not by non-specific interaction but by specific interaction, and that EIS successfully detects this binding event. Pyrolyzed carbon films are a promising material for miniaturization, integration, and low-cost fabrication in electrochemical biosensors.

Fabrication of Carbon Microneedle Arrays with High Aspect Ratios and The Control of Hydrophobicity of These Arrays for Bio-Applications (고종횡비 탄소 마이크로니들 어레이의 제조 및 생체응용을 위한 소수성 표면의 제어)

  • Lee, Jung-A;Lee, Seok-Woo;Lee, Seung-Seob;Park, Se-Il;Lee, Kwang-Cheol
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.34 no.11
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    • pp.1721-1725
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    • 2010
  • This paper reports the fabrication of geometry-controlled carbon microneedles by a backside exposure method and pyrolysis. The SU-8 microneedles are a polymer precursor in a carbonization process, which geometries such as base diameter, spacing, and aspect ratio can be controlled in a photolithography step. Using this fabrication method, highly reproducible carbon microneedles, which have high aspect ratios of more than 10 and very sharp nanotips, can be realized. The quartz surface with carbon microneedles becomes very hydrophilic and its wettability is adjusted by carrying out the silane treatment. In the carbon microneedle array ($3\;{\mu}m{\times}3\;{\mu}m$), the contact angle is extremly enhanced (${\sim}180^{\circ}$); this will be advantageous in developing low-drag microfluidics and labs-on-a-chip as well as in other bio-applications.