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Je‐Kyun Park

Korea Advanced Institute of Science and Technology · 工学

研究室紹介

Professor Je-Kyun Park's research lab specializes in microfluidic technologies for biomedical applications, focusing on label-free, high-throughput cell and particle separation using innovative hydrodynamic and dielectrophoretic principles. The lab develops advanced microfluidic devices that leverage inertial focusing, hydrophoresis, and electric field manipulation to enable precise, automated, and pump-free sample preparation for point-of-care diagnostics. Key research directions include the design of low-shear, high-efficiency microfluidic systems for whole blood processing and the integration of magnetic nanoparticles and dielectrophoresis for sensitive biomolecular detection.

microfluidicscell separationpoint-of-care testinghydrophoresisdielectrophoresis

Research Overview

Papers
401
Total Citations
8,911
Papers (5y)
16
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
16total
2022
2023
2024
2025
2026
Citations per year (5y)
106total
20222023202420252026

Selected Papers

15
1
Article|218 citations·2013
Label-Free Cancer Cell Separation from Human Whole Blood Using Inertial Microfluidics at Low Shear Stress
Myung Gwon Lee, Joong Ho Shin, Chae Yun Bae, Sungyoung Choi, Je‐Kyun Park
SJR Q1Analytical Chemistry

We report a contraction-expansion array (CEA) microchannel device that performs label-free high-throughput separation of cancer cells from whole blood at low Reynolds number (Re). The CEA microfluidic device utilizes hydrodynamic field effect for cancer cell separation, two kinds of inertial effects: (1) inertial lift force and (2) Dean flow, which results in label-free size-based separation with high throughput. To avoid cell damages potentially caused by high shear stress in conventional inert

Biomedical EngineeringEngineering
2
Article|213 citations·2005
Magnetic force-based multiplexed immunoassay using superparamagnetic nanoparticles in microfluidic channel
Kyu‐Sung Kim, Je‐Kyun Park
SJR Q1Lab on a Chip

This paper describes a novel microfluidic immunoassay utilizing binding of superparamagnetic nanoparticles to beads and deflection of these beads in a magnetic field as the signal for measuring the presence of analyte. The superparamagnetic 50 nm nanoparticles and fluorescent 1 microm polystyrene beads are immobilized with specific antibodies. When target analytes react with the polystyrene beads and superparamagnetic nanoparticles simultaneously, the superparamagnetic nanoparticles can be attac

Molecular BiologyBiochemistry, Genetics and Molecular Biology
3
Article|198 citations·2007
Continuous blood cell separation by hydrophoretic filtration
Sungyoung Choi, Seungjeong Song, Chulhee Choi, Je‐Kyun Park
SJR Q1Lab on a Chip

We propose a new hydrophoretic method for continuous blood cell separation using a microfluidic device composed of slanted obstacles and filtration obstacles. The slanted obstacles have a larger height and gap than the particles in order to focus them to a sidewall by hydrophoresis. In the successive structure, the height and gap of the filtration obstacles with a filtration pore are set between the diameters of small and large particles, which defines the critical separation diameter. According

Biomedical EngineeringEngineering
4
Article|189 citations·2005
Microfluidic system for dielectrophoretic separation based on a trapezoidal electrode array
Sungyoung Choi, Je‐Kyun Park
SJR Q1Lab on a Chip

This paper presents a novel microfluidic device for dielectrophoretic separation based on a trapezoidal electrode array (TEA). In this method, particles with different dielectric properties are separated by the device composed of the TEA for the dielectrophoretic deflection of particles under negative dielectrophoresis (DEP) and poly(dimethylsiloxane)(PDMS) microfluidic channel with a sinuous and expanded region. Polystyrene microparticles are exposed to an electric field generated from the TEA

Biomedical EngineeringEngineering
5
Review|173 citations·2020
Towards practical sample preparation in point-of-care testing: user-friendly microfluidic devices
Juhwan Park, Juhwan Park, Dong Hyun Han, Je‐Kyun Park, Je‐Kyun Park
SJR Q1Lab on a Chip

Microfluidic technologies offer a number of advantages for sample preparation in point-of-care testing (POCT), but the requirement for complicated external pumping systems limits their wide use. To facilitate sample preparation in POCT, various methods have been developed to operate microfluidic devices without complicated external pumping systems. In this review, we introduce an overview of user-friendly microfluidic devices for practical sample preparation in POCT, including self- and hand-ope

Biomedical EngineeringEngineering
6
Article|165 citations·2006
A microfluidic platform for 3-dimensional cell culture and cell-based assays
Minseok S. Kim, Ju Hun Yeon, Je‐Kyun Park
SJR Q2Biomedical Microdevices
Biomedical EngineeringEngineering
7
Article|161 citations·2007
Continuous hydrophoretic separation and sizing of microparticles using slanted obstacles in a microchannel
Sungyoung Choi, Je‐Kyun Park
SJR Q1Lab on a Chip

We report a microfluidic separation and sizing method of microparticles with hydrophoresis--the movement of suspended particles under the influence of a microstructure-induced pressure field. By exploiting slanted obstacles in a microchannel, we can generate a lateral pressure gradient so that microparticles can be deflected and arranged along the lateral flows induced by the gradient. Using such movements of particles, we completely separated polystyrene microbeads with 9 and 12 microm diameter

Biomedical EngineeringEngineering
8
Article|141 citations·2010
Inertial separation in a contraction–expansion array microchannel
Myung Gwon Lee, Sungyoung Choi, Je‐Kyun Park
SJR Q1Journal of Chromatography A
Biomedical EngineeringEngineering
9
Article|131 citations·2012
Reliable permeability assay system in a microfluidic device mimicking cerebral vasculatures
Ju Hun Yeon, Dokyun Na, Kyungsun Choi, Seung‐Wook Ryu, Chulhee Choi, Je‐Kyun Park
SJR Q2Biomedical Microdevices
NeurologyNeuroscience
10
Article|124 citations·2012
Label-Free Cell Separation Using a Tunable Magnetophoretic Repulsion Force
Fengshan Shen, Hyundoo Hwang, Young Ki Hahn, Je‐Kyun Park
SJR Q1Analytical Chemistry

This paper describes a new label-free cell separation method using a magnetic repulsion force resulting from the magnetic susceptibility difference between cells and a paramagnetic buffer solution in a microchannel. The difference in the magnetic forces acting on different-sized cells is enhanced by adjusting the magnetic susceptibility of the surrounding medium, which depends on the concentration of paramagnetic salts, such as biocompatible gadolinium diethylenetriamine pentaacetic acid (Gd-DTP

Biomedical EngineeringEngineering
11
Article|121 citations·2009
Three-dimensional hydrodynamic focusing with a single sheath flow in a single-layer microfluidic device
Myung Gwon Lee, Sungyoung Choi, Je‐Kyun Park
SJR Q1Lab on a Chip

We report a contraction-expansion array (CEA) microchannel that allows three-dimensional hydrodynamic focusing with a single sheath flow in a single-layer device. The CEA microchannel exploits centrifugal forces acting on fluids travelling along the contraction and expansion regions of the microchannel. Around an entrance of the contraction region, the centrifugal forces induce a secondary flow field where two counter-rotating vortices enable to envelop a sample flow with a sheath flow in three

Biomedical EngineeringEngineering
12
Article|114 citations·2016
Pressed Paper-Based Dipstick for Detection of Foodborne Pathogens with Multistep Reactions
Juhwan Park, Joong Ho Shin, Je‐Kyun Park, Je‐Kyun Park, Je‐Kyun Park
SJR Q1Analytical Chemistry

This paper presents a pressed paper-based dipstick that enables detection of foodborne pathogens with multistep reactions by exploiting the delayed fluid flow and channel partition formation on nitrocellulose (NC) membrane. Fluid behaviors are easily modified by controlling the amount of pressure and the position of pressed region on the NC membrane. Detection region of the dipstick is optimized by controlling flow rate and delayed time based on Darcy's law. All the reagents required for assay a

Biomedical EngineeringEngineering
13
Article|103 citations·2017
Lateral flow assay-based bacterial detection using engineered cell wall binding domains of a phage endolysin
Minsuk Kong, Joong Ho Shin, Sunggi Heu, Je‐Kyun Park, Sangryeol Ryu
SJR Q1Biosensors and Bioelectronics
EcologyEnvironmental Science
14
Review|100 citations·2010
Optoelectrofluidic platforms for chemistry and biology
Hyundoo Hwang, Je‐Kyun Park
SJR Q1Lab on a Chip

Extraordinary advances in lab on a chip systems have been made on the basis of the development of micro/nanofluidics and its fusion with other technologies based on electrokinetics and optics. Optoelectrofluidic technology, which has been recently introduced as a new manipulation scheme, allows programmable manipulation of particles or fluids in microenvironments based on optically induced electrokinetics. Herein, the behaviour of particles or fluids can be controlled by inducing or perturbing e

Biomedical EngineeringEngineering
15
Article|99 citations·2008
Sheathless Focusing of Microbeads and Blood Cells Based on Hydrophoresis
Sungyoung Choi, Seungjeong Song, Chulhee Choi, Je‐Kyun Park
SJR Q1Small

This paper presents a microfluidic device for sheathless focusing of microbeads and blood cells based on a hydrophoretic platform comprising a V-shaped obstacle array (VOA). The VOA generates lateral pressure gradients that induce helical recirculations. Following the focusing flow particles passing through the VOA are focused in the center of the channel. In the device, the focusing pattern can be modulated by varying the gap height of the VOA. To achieve complete focusing within 4.4% coefficie

Biomedical EngineeringEngineering

Research Areas

Biomedical EngineeringMolecular BiologyElectrical and Electronic EngineeringAtomic and Molecular Physics, and OpticsBioengineeringSurgery

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