• Title/Summary/Keyword: dielectrophoretic

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High throughput sorting(HTS) system using a cantilever-type electrode array (캔틸레버(Cantilever) 형태의 전극 어레이(array)를 이용한고속 분리 시스템)

  • Lee, Jung-Hun;Kim, Young-Ho;Kim, Young-Geun;Kim, Byung-Kyu
    • Journal of Sensor Science and Technology
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    • v.19 no.2
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    • pp.112-117
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    • 2010
  • A high-throughput sorting (HTS) system has been designed to separate target particles using a negative dielectrophoretic (n-DEP) force. The system consists of a meso-sized channel and a cantilever-type electrode(CE) array designed to separate a large number of target particles by discerning subtle difference of weight and dielectric material property of the particles. Using the polystyrene beads with various sizes of 10, 25 and $50{\mu}m$, the developed system exhibits high-throughput sorting of about 200 beads/sec and more than 80 % of separation efficiency.

Surface Conductance Modulation of Single-Walled Carbon Nanotubes and Effects on Dielectrophoresis (단일벽 탄소나노튜브의 표면 전도도 조절 및 유전영동에 대한 영향)

  • Hong Seung-hyun;Jung Se-hun;Kim Young-jin;Choi Jae-bong;Baik Seunghyun
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.30 no.2 s.245
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    • pp.179-186
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    • 2006
  • Dielectrophoresis has received considerable attention for separating nanotubes according to electronic types. Here we examine the effects of surface conductivity of semiconducting single-walled carbon nanotubes (SWNT), induced by ionic surfactants, on the sign of dielectrophoretic force. The crossover frequency of semiconducting SWNT increases rapidly as the conductivity ratio between the particle and medium increases, leading to an incomplete separation of ionic surfactant suspended SWNT at an electric field frequency of 10 MHz. The surface charge of SWNT is neutralized by an equimolar mixture of anionic surfactant sodium dodecyl sulfate (SDS) and cationic surfactant cetyltrimenthylammonium bromide (CTAB), resulting in negative dielectrophoresis of semiconducting species at 10 MHz. A comparative Raman spectroscopy study shows a nearly complete separation of metallic SWNT.

Development of Microfluidic Channel for Pretreatment of Extracellular ATP using DEP Force (DEP를 이용한 세포 외부 ATP 제거 전처리 미세 유로의 개발)

  • Lim, Hee-Taek;Jung, Hyo-Il
    • Proceedings of the KSME Conference
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    • 2008.11a
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    • pp.1687-1689
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    • 2008
  • In the detection of pathogenic microorganisms ATP-bioluminescence reaction is a fascinating method. ATP(adenosine triphosphate) is an energy source of all kinds of living organism and ATP-bioluminescence reaction uses this ATP. However, ATP exists not only in the cells but also outside the cells. Therefore ATP-bioluminescence reaction only with intracellular ATP is very important in pathogenic microorganism detection. Because of that reason we developed a microfluidic channel containing Dielectrophoretic zone which capture microorganisms and eliminating and washing extracellular ATP with ATP-degarading enzymes, adenosine phosphate deaminase and apyrase. Microorganisms are captured by pDEP force at the DEP electrode zone and only extracellular ATPs are washed and eliminated outside the zone.

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Dielectrophoretic separator for Airborne Microbes (전기 영동을 이용한 공기 중 미생물 분리)

  • Moon, Hui-Sung;Nam, Yun-Woo;Park, Jae-Chan;Jung, Hyo-Il
    • Proceedings of the KSME Conference
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    • 2008.11a
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    • pp.1683-1684
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    • 2008
  • For direct detection of microbes in air, samples have to be collected but environmental particles such as dust are also trapped in such samples. Therefore the isolation of target bacteria from non-biological materials of similar size is of great importance in the identification of such organisms. Dielectrophoresis is an emerging technique that can rapidly separate cells in microfluidics. In this paper we proposed a new method for the separation of airborne microbes using condensation and dielectrophoresis. This system could be used as a continuous flow through separation system for various particles and utilized as a pretreatment technique for microbe detection.

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Electromechanical Simulation of Cellulose Based Biomimetic Electro-Active Paper (생체모방 종이작동기(electro-active paper)의 전기기계적인 구동 시뮬레이션)

  • Jang, Sang-Dong;Kim, Jae-Hwan;Kim, Heung-Soo
    • Transactions of the Korean Society for Noise and Vibration Engineering
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    • v.17 no.12
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    • pp.1179-1183
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    • 2007
  • Electro-Active paper(EAPap) is a new smart material that has a potential to be used in biomimetic actuator and sensor. It is made by cellulose that is abundant material in nature. EAPap is fascinating with its biodegradability, lightweight, large displacement, high mechanical strength and low actuation voltage. Actuating mechanism of EAPap is known to be the combined effects of ion migration and piezoelectricity. However, the electromechanical actuation mechanisms are not yet to be established. This paper presents the modeling of the actuation behavior of water infused cellulose samples and their composite dielectric constants calculated by Maxwell-Wagner theory. Electro-mechanical forces were calculated using Maxwell stress tensor method. Bending deflection was evaluated from simple beam model and compared with experimental observation, and which result in good correlation with each other.

Non-contact mode measurement of high aspect ratio tip (High aspect ratio 팁의 비접촉모드에서의 측정)

  • Shin Y.H.;Han C.S.
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 2006.05a
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    • pp.463-464
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    • 2006
  • This paper present experimental results by non-contact mode Atomic Force Microscopy using high aspect ratio tips (HAR-T). We fabricated the carbon nanotube tip based on dielectrophoresis and the carbon nano probe by focused ion beam after dielectrophoretic assembling. In this paper, we measure AAO sample and trench structure to estimate HAR-T's performance and compared with conventional Si tip. We confirmed that results of HAR-T's performance in non contact mode was very superior than conventional tip.

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Ultraprecision polishing for micro parts using electric polarization effect of abrasive particles (연마입자의 전기적 분극성을 이용한 초정밀연마기술)

  • 이승환;김욱배;이상조
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 2002.10a
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    • pp.227-230
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    • 2002
  • New polishing technique for small parts has been tried out using the principle of particle electromechanics. Common fine abrasives such as alumina, diamond, silicon carbide are dielectric materials which are polarized under an electric field, and a non-uniform electric field makes abrasive particles translate along the field line. Using this principle, We make abrasive particles aggregate in the vicinity of the micro tool which is fir the surface finishing of a small part without contact with it. The behavior of particles is optically measured, and the machined depth of glass is examined.

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Numerical Simulation of Particle Deposition Pattern on Cylindrical Fiber under External Electrical Field (외부 전기장내의 단일 섬유에 대한 먼지층 형사 수치 모사)

  • 박현설;정용원;박영옥;이규원
    • Journal of Korean Society for Atmospheric Environment
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    • v.15 no.1
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    • pp.41-51
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    • 1999
  • In this study, the two dimensional morphology of particle accumulates on a cylindrical fiber was numerically simulated when a uniform external electric field was present across a cylindrical fiber. In order to investigate the mechanism of linear dendrite formation which is observed under the above electrostatic condition, the electrostatic forces between a newly introduced particle and each deposited particle were calculated and compared with those between the particle and fiber As a result of this study it was found that dielectrophoretic forces between the oncoming particle and fiber play principal roles in linear dendrite formation.

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Experimental study of assembly of the carbon nanotube tip for SPM (SPM 용 카본 나노튜브 팁 조립의 실험적 연구)

  • Park J.K.;Kim J.E.;Han C.S.;Park Y.G.;Hwang K.H.
    • Proceedings of the Korean Society of Precision Engineering Conference
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    • 2005.06a
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    • pp.1228-1231
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    • 2005
  • This paper reports about the development of scanning probe microscopy (SPM) tip with multi-walled carbon nanotube (MWNT). For making a carbon nanotube (CNT) modified tips, AC electric field which causes the dielectrophoresis was used for alignment and deposition of CNTs to the metal coated SPM tip. By dropping the MWNT solution and applying an electric field between an SPM tip and an electrode, MWNTs which were dispersed into a diluted solution were directly assembled onto the apex of the SPM tips due to the attraction by the dielectrophoretic force. In this paper, we investigate experimental conditions about the alignment of the CNT to tip axis according to the change of the angle between a tip and an electrode. Experimental results are presented, and then fabricated CNT tips are showed and measurement results for 15nm gold particles are compared with that of the conventional silicon tip.

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The Electrode Shape for the Efficient Separation of Cell in Dielectrophoresis-Activated Cell Sorter (유전영동을 이용한 입자분리기의 효율적인 분리를 위한 전극 형태)

  • An, Jae-Min;Chae, Seung-Yeub;Park, Seok-Ho;Kim, Byung-Kyu
    • Transactions of the Korean Society of Mechanical Engineers A
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    • v.33 no.1
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    • pp.49-55
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    • 2009
  • This paper presents the optimal shape of microelectrode that generates dielectrophoretic(DEP) force to separate particles in homogeneous medium. The principle of the particles sorting is based on the use of the relative strengths of negative DEP (nDEP) and drag forces, as in a general DEP-activated cell sorter (DACS). To numerically calculate the DEP force and drag force, the simulation is implemented in MATLAB 7.0. The properties of particles, which are used in simulation, are similarly selected as those of cells to apply cell separation. The most optimized shape of electrode is selected by numerical simulation according to a variety of electrode shape such as rectangle, trapezoidal, and right-triangle. Through, in addition, parameter study, we found that applied frequency is more significant factor on the separation than various parameters, such as applied voltage and permittivity of medium, that decide on the strength of DEP force.