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Hong-Gu Cheon

Korea University · Engineering

About the Lab

Professor Hong-Gu Cheon's research lab specializes in iontronics and microfluidic systems, focusing on the development of functional materials and devices that manipulate ions for biomedical and environmental applications. The lab pioneers ion-conductive polymers, such as poly-AMPS and PDADMAC, to enable efficient ion transport, preconcentration, and sensing in aqueous environments. Key research directions include designing biocompatible, flexible, and omniphobic surfaces for blood-contacting devices, as well as creating low-voltage, active micromixers and particle sensors using polyelectrolyte-based electrodes. The lab’s work bridges soft materials, electrokinetics, and bio-integrated microsystems for next-generation point-of-care diagnostics and implantable devices.

iontronicsmicrofluidicspolyelectrolyteion preconcentrationbiomaterials

Research Overview

Papers
106
Total Citations
2,463
Papers (5y)
23
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
23total
2021
2022
2023
2024
2025
Citations per year (5y)
184total
20212022202320242025

Selected Papers

15
1
Review|202 citations·2015
Iontronics
Honggu Chun, Taek Dong Chung
SJR Q1Annual Review of Analytical Chemistry

Iontronics is an emerging technology based on sophisticated control of ions as signal carriers that bridges solid-state electronics and biological system. It is found in nature, e.g., information transduction and processing of brain in which neurons are dynamically polarized or depolarized by ion transport across cell membranes. It suggests the operating principle of aqueous circuits made of predesigned structures and functional materials that characteristically interact with ions of various cha

Electrical and Electronic EngineeringEngineering
2
Article|80 citations·2005
Cytometry and Velocimetry on a Microfluidic Chip Using Polyelectrolytic Salt Bridges
Honggu Chun, Taek Dong Chung, Hee Chan Kim
SJR Q1Analytical Chemistry

This paper reports a polyelectrolytic salt bridge-based electrode (PSBE), which is a key embedded unit in a microchip device that can size-selectively count microparticles and measure their velocities. The construction of salt bridges at specific locations within a microfluidic chip enables dc-driven electrical detection to be performed successfully. This is expected to be a competitive alternative to the optical methods currently used in conventional cell sorters. The PSBEs were fabricated by i

Biomedical EngineeringEngineering
3
Article|76 citations·2010
High Yield Sample Preconcentration Using a Highly Ion-Conductive Charge-Selective Polymer
Honggu Chun, Taek Dong Chung, J. Michael Ramsey
SJR Q1Analytical ChemistryOA

The development and analysis of a microfluidic sample preconcentration system using a highly ion-conductive charge-selective polymer [poly-AMPS (2-acrylamido-2-methyl-1-propanesulfonic acid)] is reported. The preconcentration is based on the phenomenon of concentration polarization which develops at the boundaries of the poly-AMPS with buffer solutions. A negatively charged polymer, poly-AMPS, positioned between two microchannels efficiently extracts cations through its large cross section, resu

Biomedical EngineeringEngineering
4
Article|38 citations·2008
Ultrafast active mixer using polyelectrolytic ion extractor
Honggu Chun, Hee Chan Kim, Taek Dong Chung
SJR Q1Lab on a Chip

We report on a low voltage, straight/smooth surface, and efficient active micromixer. The mixing principle is based on alternative ion depletion-enrichment using a pair of positively charged polyelectrolytic gel electrodes (pPGEs), which face each other joined by a microchannel. This system has an external AC signal source electrically connected to the pPGEs via the respective 1 M KCl solutions and Ag/AgCl electrodes. When an electric bias is applied between the two pPGEs, anions are extracted t

Biomedical EngineeringEngineering
5
Article|28 citations·2019
Flexible and Stable Omniphobic Surfaces Based on Biomimetic Repulsive Air-Spring Structures
Dongkwon Seo, Suk-kyong Cha, Gijung Kim, Hyunku Shin, Soonwoo Hong, Yang Hyun Cho, Honggu Chun, Yeonho Choi
SJR Q1ACS Applied Materials & Interfaces

In artificial biological circulation systems such as extracorporeal membrane oxygenation, surface wettability is a critical factor in blood clotting problems. Therefore, to prevent blood from clotting, omniphobic surfaces are required to repel both hydrophilic and oleophilic liquids and reduce surface friction. However, most omniphobic surfaces have been fabricated by combining chemical reagent coating and physical structures and/or using rigid materials such as silicon and metal. It is almost i

Surfaces, Coatings and FilmsMaterials Science
6
Article|21 citations·2014
Cation-selective electropreconcentration
Il Hyung Shin, Ki‐Jung Kim, Jiman Kim, Hee Chan Kim, Honggu Chun
SJR Q1Lab on a Chip

A cation-selective microfluidic sample preconcentration system is described. The cation sample was electropreconcentrated using a reversed-direction electroosmotic flow (EOF) and an anion-permselective filter, where an electric double layer (EDL) overlap condition existed. The anion-permselective filter between microchannels was fabricated by three different methods: 1) extending a positively charged, nanoporous, polymer membrane by photopolymerization of poly(diallyldimethylammonium chloride) (

Biomedical EngineeringEngineering
7
Article|21 citations·2024
Recent Progress in High-Throughput Enzymatic DNA Synthesis for Data Storage
David J. Baek, Sung-Yune Joe, Haewon Shin, Chaewon Park, Seokwoo Jo, Honggu Chun
SJR Q1BioChip Journal
Molecular BiologyBiochemistry, Genetics and Molecular Biology
8
Article|19 citations·2021
Droplet Energy Harvesting Is Reverse Phenomenon of Electrowetting on Dielectric
Gijung Kim, Wonjune Kim, Honggu Chun
SJR Q1Advanced Functional Materials

Abstract Electric energy is generated when water droplets slide down electrodes coated with a hydrophobic dielectric layer. The principle of energy generation needs to be clarified for the optimization and scalable design of the energy‐harvesting system. In this study, it is shown that droplet energy harvesting is the reverse phenomenon of voltage‐driven droplet actuation or electrowetting‐on‐dielectric (EWOD). For this reverse EWOD, the interfacial energy difference generated between the three‐

Electrical and Electronic EngineeringEngineering
9
Article|17 citations·2017
Electroosmotic Effects on Sample Concentration at the Interface of a Micro/Nanochannel
Honggu Chun
SJR Q1Analytical Chemistry

Electroosmotic effect on electropreconcentration of analytes was investigated at the micro/nanochannel interface for a series of 1-D glass nanochannels with depths of 72, 54, 29, and 9 nm. The electric double layer approaches overlap conditions as the nanochannel depth decreases, suppressing the electroosmotic flow. The nanochannels' electroosmotic flows (μ<sub>eo</sub><sup>nano</sup>) were determined and compared to the analyte's (fluorescein) electrophoretic mobility (μ<sub>ep</sub>). For the

Biomedical EngineeringEngineering
10
Article|16 citations·1983
Cisplatin for adrenal cortical carcinoma.
Honggu Chun, A Yagoda, Nancy Kemeny, Robin C. Watson
PubMed
NeurologyMedicine
11
Article|15 citations·2005
IT-based diagnostic instrumentation systems for personalized healthcare services.
Honggu Chun, Jaemin Kang, Ki‐Jung Kim, Kwang Suk Park, Hee Chan Kim
PubMed

This paper describes recent research and development activities on the diagnostic instruments for personalized healthcare services in Seoul National University. Utilizing the state-of-the-art information technologies (IT), various diagnostic medical instruments have been integrated into a personal wearable device and a home telehealthcare system. We developed a wrist-worn integrated health monitoring device (WIHMD) which performs the measurements of non-invasive blood pressure (NIBP), pulse oxim

Biomedical EngineeringEngineering
12
Article|15 citations·2021
Diffusion-Based Separation of Extracellular Vesicles by Nanoporous Membrane Chip
Gijung Kim, Min‐Chul Park, Seonae Jang, Daeyoung Han, Hojun Kim, Wonjune Kim, Honggu Chun, Sung‐Hoon Kim
SJR Q1BiosensorsOA

Extracellular vesicles (EVs) have emerged as novel biomarkers and therapeutic material. However, the small size (~200 nm) of EVs makes efficient separation challenging. Here, a physical/chemical stress-free separation of EVs based on diffusion through a nanoporous membrane chip is presented. A polycarbonate membrane with 200 nm pores, positioned between two chambers, functions as the size-selective filter. Using the chip, EVs from cell culture media and human serum were separated. The separated

Molecular BiologyBiochemistry, Genetics and Molecular Biology
13
Article|15 citations·2019
Multiplexed detection of pathogens using magnetic microparticles encoded by magnetic axes
Ji Hyun Kim, Young Ki Hahn, Honggu Chun
SJR Q1Sensors and Actuators B Chemical
Biomedical EngineeringEngineering
14
Book Chapter|14 citations·1984
Randomized Study of Intrahepatic vs Systemic Infusion of Fluorodeoxyuridine in Patients with Liver Metastases from Colorectal Carcinoma (Preliminary Results)
Nancy E. Kemeny, J. Daly, Honggu Chun, Paula Oderman, Gina R. Petroni, Nancy L. Geller
HepatologyMedicine
15
Article|14 citations·2024
SERS detection of surface-adsorbent toxic substances of microplastics based on gold nanoparticles and surface acoustic waves
Hyeong Min Ahn, Jin‐Oh Park, Hakjun Lee, Cheonkyu Lee, Honggu Chun, Kwang Bok Kim
SJR Q1RSC AdvancesOA

= 0.98), and the limits of detection were 95, 168, and 195 nM, respectively. Each PAH was detected on the surface of PSMPs, which were adsorbed with toxic substances in a mixture of three PAHs, indicating that the technique can be used to elucidate mixtures of toxic substances. The proposed SERS detection method based on SAWs could sense toxic substances that were surface-adsorbed on microplastics and can be utilized to monitor or track pollutants in aquatic environments.

Biomedical EngineeringEngineering

Research Areas

Biomedical EngineeringMolecular BiologyElectrical and Electronic EngineeringHematologyOncologyCardiology and Cardiovascular Medicine

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