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Jang‐Ung Park

Yonsei University · 工学

研究室紹介

Professor Jang-Ung Park's research lab specializes in the development of advanced functional materials and flexible electronic systems for next-generation wearable and implantable biomedical devices. The lab focuses on creating transparent, stretchable, and biocompatible electrodes and sensors using novel nanomaterials such as graphene, metal nanowires, and metallic glasses. Key research directions include multifunctional smart contact lenses for real-time physiological monitoring, reconfigurable 3D-printed liquid metal circuits, and high-performance transparent electrodes with exceptional optoelectromechanical stability. The lab emphasizes practical applications in health monitoring, with an emphasis on minimizing invasiveness and maximizing user comfort and device reliability.

wearable electronicstransparent electrodesflexible sensorsnanomaterialsbiomedical devices

Research Overview

Papers
193
Total Citations
16,337
Papers (5y)
62
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
62total
2022
2023
2024
2025
2026
Citations per year (5y)
1,786total
20222023202420252026

Selected Papers

15
1
Article|1,476 citations·2007
High-resolution electrohydrodynamic jet printing
Jang‐Ung Park, Matthew T. Hardy, Seong Jun Kang, Kira Barton, Kurt Adair, Deep kishore Mukhopadhyay, Chang Young Lee, Michael S. Strano, Andrew G. Alleyne, John G. Georgiadis, Placid M. Ferreira, John A. Rogers
SJR Q1Nature Materials
Electrical and Electronic EngineeringEngineering
2
Article|940 citations·2017
Wearable smart sensor systems integrated on soft contact lenses for wireless ocular diagnostics
Joohee Kim, Minji Kim, Mi‐Sun Lee, Kukjoo Kim, Sangyoon Ji, Yun-Tae Kim, Jihun Park, Kyungmin Na, Kwi-Hyun Bae, Hong Kyun Kim, Franklin Bien, Chang Young Lee
SJR Q1Nature CommunicationsOA

Wearable contact lenses which can monitor physiological parameters have attracted substantial interests due to the capability of direct detection of biomarkers contained in body fluids. However, previously reported contact lens sensors can only monitor a single analyte at a time. Furthermore, such ocular contact lenses generally obstruct the field of vision of the subject. Here, we developed a multifunctional contact lens sensor that alleviates some of these limitations since it was developed on

Biomedical EngineeringEngineering
3
Article|656 citations·2013
High-Performance, Transparent, and Stretchable Electrodes Using Graphene–Metal Nanowire Hybrid Structures
Mi‐Sun Lee, Kyongsoo Lee, So-Yun Kim, Hee-Joo Lee, Jihun Park, Kwang-Hyuk Choi, Han-Ki Kim, Dae-Gon Kim, Dae-Young Lee, SungWoo Nam, Jang‐Ung Park, Jang‐Ung Park
SJR Q1Nano Letters

Transparent electrodes that can remain electrically conductive and stable under large mechanical deformations are highly desirable for applications in flexible and wearable electronics. This paper describes a comprehensive study of the electrical, optical, and mechanical properties of hybrid nanostructures based on two-dimensional graphene and networks of one-dimensional metal nanowires, and their use as transparent and stretchable electrodes. Low sheet resistance (33 Ω/sq) with high transmittan

Biomedical EngineeringEngineering
4
Article|653 citations·2018
Soft, smart contact lenses with integrations of wireless circuits, glucose sensors, and displays
Jihun Park, Joohee Kim, So-Yun Kim, Woon Hyung Cheong, Jiuk Jang, Young‐Geun Park, Kyungmin Na, Yun‐Tae Kim, Jun Hyuk Heo, Chang Young Lee, Jung Heon Lee, Franklin Bien
SJR Q1Science AdvancesOA

Recent advances in wearable electronics combined with wireless communications are essential to the realization of medical applications through health monitoring technologies. For example, a smart contact lens, which is capable of monitoring the physiological information of the eye and tear fluid, could provide real-time, noninvasive medical diagnostics. However, previous reports concerning the smart contact lens have indicated that opaque and brittle components have been used to enable the opera

Biomedical EngineeringEngineering
5
Article|423 citations·2018
Transparent and flexible fingerprint sensor array with multiplexed detection of tactile pressure and skin temperature
Byeong Wan An, Sanghyun Heo, Sangyoon Ji, Franklin Bien, Jang‐Ung Park
SJR Q1Nature CommunicationsOA

We developed a transparent and flexible, capacitive fingerprint sensor array with multiplexed, simultaneous detection of tactile pressure and finger skin temperature for mobile smart devices. In our approach, networks of hybrid nanostructures using ultra-long metal nanofibers and finer nanowires were formed as transparent, flexible electrodes of a multifunctional sensor array. These sensors exhibited excellent optoelectronic properties and outstanding reliability against mechanical bending. This

Biomedical EngineeringEngineering
6
Article|353 citations·2019
High-resolution, reconfigurable printing of liquid metals with three-dimensional structures
Young‐Geun Park, Hyeon Seok An, Ju‐Young Kim, Jang‐Ung Park
SJR Q1Science AdvancesOA

We report an unconventional approach for high-resolution, reconfigurable 3D printing using liquid metals for stretchable, 3D integrations. A minimum line width of 1.9 μm can be reliably formed using direct printing, and printed patterns can be reconfigured into diverse 3D structures with maintaining pristine resolutions. This reconfiguration can be performed multiple times, and it also generates a thin oxide interface that can be effective in preventing the spontaneous penetration of gallium ato

Biomedical EngineeringEngineering
7
Article|305 citations·2015
Stretchable, Transparent Electrodes as Wearable Heaters Using Nanotrough Networks of Metallic Glasses with Superior Mechanical Properties and Thermal Stability
Byeong Wan An, Eun-Ji Gwak, Kukjoo Kim, Young-Cheon Kim, Jiuk Jang, Ju‐Young Kim, Jang‐Ung Park
SJR Q1Nano Letters

Mechanical robustness, electrical and chemical reliabilities of devices against large deformations such as bending and stretching have become the key metrics for rapidly emerging wearable electronics. Metallic glasses (MGs) have high elastic limit, electrical conductivity, and corrosion resistance, which can be promising for applications in wearable electronics. However, their applications in wearable electronics or transparent electrodes have not been extensively explored so far. Here, we demon

Biomedical EngineeringEngineering
8
Article|298 citations·2015
High‐Resolution Printing of 3D Structures Using an Electrohydrodynamic Inkjet with Multiple Functional Inks
Byeong Wan An, Kukjoo Kim, Hee-Joo Lee, So‐Yun Kim, Yul Hui Shim, Dae‐Young Lee, Jun Yeob Song, Jang‐Ung Park
SJR Q1Advanced Materials

Electrohydrodynamic-inkjet-printed high-resolution complex 3D structures with multiple functional inks are demonstrated. Printed 3D structures can have a variety of fine patterns, such as vertical or helix-shaped pillars and straight or rounded walls, with high aspect ratios (greater than ≈50) and narrow diameters (≈0.7 μm). Furthermore, the formation of freestanding, bridge-like Ag wire structures on plastic substrates suggests substantial potentials as high-precision, flexible 3D interconnects

Electrical and Electronic EngineeringEngineering
9
Review|288 citations·2017
Smart Sensor Systems for Wearable Electronic Devices
Byeong Wan An, Jung Hwal Shin, So‐Yun Kim, Joohee Kim, Sangyoon Ji, Jihun Park, Youngjin Lee, Jiuk Jang, Young‐Geun Park, Eunjin Cho, Subin Jo, Jang‐Ung Park
SJR Q1PolymersOA

Wearable human interaction devices are technologies with various applications for improving human comfort, convenience and security and for monitoring health conditions. Healthcare monitoring includes caring for the welfare of every person, which includes early diagnosis of diseases, real-time monitoring of the effects of treatment, therapy, and the general monitoring of the conditions of people's health. As a result, wearable electronic devices are receiving greater attention because of their f

Biomedical EngineeringEngineering
10
Article|261 citations·2020
Smart, soft contact lens for wireless immunosensing of cortisol
Minjae Ku, Joohee Kim, Jong‐Eun Won, Wonkyu Kang, Young‐Geun Park, Jihun Park, Jihun Park, Jae‐Hyun Lee, Jinwoo Cheon, Hyun Ho Lee, Jang‐Ung Park, Jang‐Ung Park
SJR Q1Science AdvancesOA

Despite various approaches to immunoassay and chromatography for monitoring cortisol concentrations, conventional methods require bulky external equipment, which limits their use as mobile health care systems. Here, we describe a human pilot trial of a soft, smart contact lens for real-time detection of the cortisol concentration in tears using a smartphone. A cortisol sensor formed using a graphene field-effect transistor can measure cortisol concentration with a detection limit of 10 pg/ml, wh

Biomedical EngineeringEngineering
11
Review|244 citations·2021
Liquid Metal‐Based Soft Electronics for Wearable Healthcare
Young‐Geun Park, Gayeon Lee, Jiuk Jang, Su Min Yun, Enji Kim, Jang‐Ung Park
SJR Q1Advanced Healthcare Materials

Wearable healthcare devices have garnered substantial interest for the realization of personal health management by monitoring the physiological parameters of individuals. Attaining the integrity between the devices and the biological interfaces is one of the greatest challenges to achieving high-quality body information in dynamic conditions. Liquid metals, which exist in the liquid phase at room temperatures, are advanced intensively as conductors for deformable devices because of their excell

Biomedical EngineeringEngineering
12
Article|232 citations·2011
Synthesis of monolithic graphene–graphite integrated electronics
Jang‐Ung Park, SungWoo Nam, Mi Sun Lee, Charles M. Lieber
SJR Q1Nature MaterialsOA
Materials ChemistryMaterials Science
13
Article|226 citations·2008
Nanoscale Patterns of Oligonucleotides Formed by Electrohydrodynamic Jet Printing with Applications in Biosensing and Nanomaterials Assembly
Jang‐Ung Park, Jung Heon Lee, Ungyu Paik, Yi Lu, John A. Rogers
SJR Q1Nano LettersOA

The widespread use of DNA in microarrays for applications in biotechnology, combined with its promise in programmed nanomaterials assembly, unusual electronic devices, and other areas has created interest in methods for patterning DNA with high spatial resolution. Techniques based on thermal or piezoelectric inkjet printing are attractive due to their noncontacting nature and their compatibility with diverse materials and substrate types; their modest resolution (i.e., 10-20 microm) represents a

Biomedical EngineeringEngineering
14
Review|217 citations·2018
Recent Advances in Transparent Electronics with Stretchable Forms
Kukjoo Kim, Young‐Geun Park, Byung Gwan Hyun, Min‐Jae Choi, Jang‐Ung Park
SJR Q1Advanced Materials

Advances in materials science and the desire for next-generation electronics have driven the development of stretchable and transparent electronics in the past decade. Novel applications, such as smart contact lenses and wearable sensors, have been introduced with stretchable and transparent form factors, requiring a deeper and wider exploration of materials and fabrication processes. In this regard, many research efforts have been dedicated to the development of mechanically stretchable, optica

Biomedical EngineeringEngineering
15
Article|216 citations·2021
A soft and transparent contact lens for the wireless quantitative monitoring of intraocular pressure
Joohee Kim, Jihun Park, Young‐Geun Park, Eunkyung Cha, Minjae Ku, Hyeon Seok An, Kyoung‐Pil Lee, Man‐Il Huh, Junmo Kim, Taek‐Soo Kim, Dai Woo Kim, Hong Kyun Kim
SJR Q1Nature Biomedical Engineering
Biomedical EngineeringEngineering

Research Areas

Biomedical EngineeringElectrical and Electronic EngineeringCellular and Molecular NeuroscienceMaterials ChemistryMechanical EngineeringAutomotive Engineering

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