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Sun, Jeong-Yun

Seoul National University · 工学

研究室紹介

Professor Sun Jeong-Yun's research lab specializes in developing bioinspired, stretchable, and biocompatible ionic electronic systems for next-generation human-machine interfaces. The lab focuses on hydrogel-based ionic conductors that enable transparent, highly stretchable, and soft sensors and devices, mimicking the functionality of natural skin. Key research directions include wearable bioelectronics, self-powered ionic communication systems, and stimuli-responsive soft robotics. The lab integrates principles from materials science, ionics, and biomedical engineering to create devices that are not only mechanically robust but also compatible with the human body.

ionic conductorshydrogel electronicswearable bioelectronicssoft roboticsself-powered sensors

Research Overview

Papers
133
Total Citations
15,774
Papers (5y)
75
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
75total
2021
2022
2023
2024
2025
Citations per year (5y)
1,386total
20212022202320242025

Selected Papers

15
1
Article|5,323 citations·2012
Highly stretchable and tough hydrogels
Jeong‐Yun Sun, Xuanhe Zhao, Widusha R. K. Illeperuma, Ovijit Chaudhuri, Kyu Hwan Oh, David Mooney, Joost J. Vlassak, Zhigang Suo
SJR Q1Nature
Public Health, Environmental and Occupational HealthMedicine
2
Article|1,179 citations·2014
Ionic skin
Jeong‐Yun Sun, Christoph Keplinger, George M. Whitesides, Zhigang Suo
SJR Q1Advanced MaterialsOA

Electronic skins (i.e., stretchable sheets of distributed sensors) report signals using electrons, whereas natural skins report signals using ions. Here, ionic conductors are used to create a new type of sensory sheet, called “ionic skin”. Ionic skins are highly stretchable, transparent, and biocompatible. They readily measure strains from 1% to 500%, and pressures as low as 1 kPa. As a service to our authors and readers, this journal provides supporting information supplied by the authors. Such

Biomedical EngineeringEngineering
3
Article|1,032 citations·2016
Highly stretchable, transparent ionic touch panel
Chong‐Chan Kim, Hyun‐Hee Lee, Kyu Hwan Oh, Jeong‐Yun Sun
SJR Q1Science

Because human-computer interactions are increasingly important, touch panels may require stretchability and biocompatibility in order to allow integration with the human body. However, most touch panels have been developed based on stiff and brittle electrodes. We demonstrate an ionic touch panel based on a polyacrylamide hydrogel containing lithium chloride salts. The panel is soft and stretchable, so it can sustain a large deformation. The panel can freely transmit light information because th

Biomedical EngineeringEngineering
4
Article|485 citations·2020
Hydrogel soft robotics
Young‐Hoon Lee, Won Jun Song, Jeong‐Yun Sun
SJR Q1Materials Today PhysicsOA

With the rapidly growing attention to human-robot interfaces, soft robotics has attracted a great deal of interest. Soft robots have diverse advantages, including compliancy and safety, which contribute to seamless interactions with humans. To boost progress in the field, there is a need for compliant materials. Hydrogels are promising as compliant materials for soft robots because of their outstanding features, including high stretchability, transparency, ion conductivity, and biocompatibility.

Biomedical EngineeringEngineering
5
Article|325 citations·2015
A Strain‐Insensitive Stretchable Electronic Conductor: PEDOT:PSS/Acrylamide Organogels
Yoo‐Yong Lee, Ho‐Young Kang, Seok Hyeon Gwon, Gwang Mook Choi, Seungmin Lim, Jeong‐Yun Sun, Young‐Chang Joo
SJR Q1Advanced Materials

PSS are well preserved during the mechanical deformation.

Polymers and PlasticsMaterials Science
6
Review|320 citations·2018
Stretchable Ionics – A Promising Candidate for Upcoming Wearable Devices
Hae‐Ryung Lee, Chong‐Chan Kim, Jeong‐Yun Sun
SJR Q1Advanced Materials

As many devices for human utility aim for fast and convenient communication with users, superb electronic devices are demonstrated to serve as hardware for human-machine interfaces in wearable forms. Wearable devices for daily healthcare and self-diagnosis offer more human-like properties unconstrained by deformation. In this sense, stretchable ionics based on flexible and stretchable hydrogels are on the rise as another means to develop wearable devices for bioapplications for two main reasons:

Biomedical EngineeringEngineering
7
Article|299 citations·2018
Transparent and attachable ionic communicators based on self-cleanable triboelectric nanogenerators
Young‐Hoon Lee, Seung Hee, Yongwoo Kim, Dukhyun Choi, Jeong‐Yun Sun
SJR Q1Nature CommunicationsOA

Human-machine interfaces have benefited from the advent of wireless sensor networks and the internet of things, but rely on wearable/attachable electronics exhibiting stretchability, biocompatibility, and transmittance. Limited by weight and volume, wearable devices should be energy efficient and even self-powered. Here, we report practical approaches for obtaining a stably self-cleanable, transparent and attachable ionic communicator based on triboelectric nanogenerators. The communicator can b

Biomedical EngineeringEngineering
8
Article|285 citations·2022
Hydrogel-based strong and fast actuators by electroosmotic turgor pressure
Hyeonuk Na, Yong‐Woo Kang, Chang Seo Park, Sohyun Jung, Ho‐Young Kim, Jeong‐Yun Sun
SJR Q1Science

Hydrogels are promising as materials for soft actuators because of qualities such as softness, transparency, and responsiveness to stimuli. However, weak and slow actuations remain challenging as a result of low modulus and osmosis-driven slow water diffusion, respectively. We used turgor pressure and electroosmosis to realize a strong and fast hydrogel-based actuator. A turgor actuator fabricated with a gel confined by a selectively permeable membrane can retain a high osmotic pressure that dri

Biomedical EngineeringEngineering
9
Article|189 citations·2020
Accelerated wound healing with an ionic patch assisted by a triboelectric nanogenerator
Seol‐Ha Jeong, Young‐Hoon Lee, Min-Gyu Lee, Won Jun Song, Ji‐Ung Park, Jeong‐Yun Sun
SJR Q1Nano Energy
Biomedical EngineeringEngineering
10
Article|158 citations·2011
Folding wrinkles of a thin stiff layer on a soft substrate
Jeong‐Yun Sun, Shuman Xia, Myoung‐Woon Moon, Kyu Hwan Oh, Kyung–Suk Kim
SJR Q1Proceedings of the Royal Society A Mathematical Physical and Engineering Sciences

We present the mechanics of folding surface-layer wrinkles on a soft substrate, i.e. inter-touching of neighbouring wrinkle surfaces without forming a cusp. Upon laterally compressing a stiff layer attached on a finite-elastic substrate, certain material nonlinearities trigger a number of bifurcation processes to form multi-mode wrinkle clusters. Some of these clusters eventually develop into folded wrinkles. The first bifurcation of the multi-mode wrinkles is investigated by a perturbation anal

Mechanical EngineeringEngineering
11
Article|127 citations·2024
Hydrogels for bioinspired soft robots
Chang Seo Park, Yong‐Woo Kang, Hyeonuk Na, Jeong‐Yun Sun
SJR Q1Progress in Polymer Science
Mechanical EngineeringEngineering
12
erratum|103 citations·2013
Folding wrinkles of a thin film stiff layer on a soft substrate
Jeong‐Yun Sun, Shuman Xia, Myoung‐Woon Moon, Kyu Hwan Oh, Kyung–Suk Kim
SJR Q1Proceedings of the Royal Society A Mathematical Physical and Engineering SciencesOA

[This corrects the article DOI: 10.1098/rspa.2011.0567.].

Mechanical EngineeringEngineering
13
Article|98 citations·2018
Electroactive Soft Photonic Devices for the Synesthetic Perception of Color and Sound
Do Yoon Kim, Sunglok Choi, Hyesung Cho, Jeong‐Yun Sun
SJR Q1Advanced Materials

Color, as perceived through the eye, transcends mere information in the visible range of electromagnetism and serves as an agent for communication and entertainment. Mechanochromic systems have thus far only aimed at satisfying the sense of vision and have overlooked the possibility of generating acoustic vibrations in concert with their visual color responses that would enable the simultaneous satisfaction of the auditory system. Transcending the boundaries of the two senses (i.e., sound and co

Mechanical EngineeringEngineering
14
Article|96 citations·2016
Highly Stretchable and Notch-Insensitive Hydrogel Based on Polyacrylamide and Milk Protein
Jinwoo Ma, Jaehun Lee, Sang Sub Han, Kyu Hwan Oh, Ki Tae Nam, Jeong‐Yun Sun
SJR Q1ACS Applied Materials & Interfaces

Protein-based hydrogels have received attention for biomedical applications and tissue engineering because they are biocompatible and abundant. However, the poor mechanical properties of these hydrogels remain a hurdle for practical use. We have developed a highly stretchable and notch-insensitive hydrogel by integrating casein micelles into polyacrylamide (PAAm) networks. In the casein-PAAm hybrid gels, casein micelles and polyacrylamide chains synergistically enhance the mechanical properties.

Molecular MedicineBiochemistry, Genetics and Molecular Biology
15
Article|92 citations·2018
A Stretchable Ionic Diode from Copolyelectrolyte Hydrogels with Methacrylated Polysaccharides
Hae‐Ryung Lee, Jaesung Woo, Seok Hee Han, Seungmin Lim, Sungsoo Lim, Yong‐Woo Kang, Won Jun Song, Jae‐Man Park, Taek Dong Chung, Young‐Chang Joo, Jeong‐Yun Sun
SJR Q1Advanced Functional Materials

Abstract As the demand for soft and flexible devices steadily increases, the ionic applications demonstrated with gel materials have come under the spotlight. Here, stretchable and wearable ionic diodes (SIDs) made from polyelectrolyte hydrogels are introduced. Polyelectrolyte hydrogels are mechanically modified using methacrylated polysaccharides while preserving the ion‐permselectivity of poly(sulfopropyl acrylate) potassium salt (PSPA) and poly([acrylamidopropyl]trimethylammonium chloride) (P

Biomedical EngineeringEngineering

Research Areas

Biomedical EngineeringMolecular MedicineMechanical EngineeringElectrical and Electronic EngineeringMaterials ChemistryPolymers and Plastics

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