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Seung Yong Han

Seoul National University · Engineering

About the Lab

Professor Seung Yong Han's research lab specializes in the development of flexible, stretchable, and skin-like electronic systems with a focus on nanomaterial-based conductive networks, wireless powering, and advanced sensing. The lab pioneers innovative fabrication techniques such as plasmonic laser nanowelding and nanorecycling to enable low-temperature, ambient-condition processing of metal nanowires for high-performance electrodes. Key research directions include wearable biomedical sensors, energy-efficient electronics, and the integration of artificial intelligence for motion and physiological signal recognition. The lab also explores mechanically robust nanocomposite elastomers for durable, multifunctional skin-electronics capable of thermotherapeutic and electrophysiological monitoring.

nanowire networksskin-like electronicswireless poweringplasmonic nanoweldingwearable sensors

Research Overview

Papers
107
Total Citations
8,506
Papers (5y)
37
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
37total
2021
2022
2023
2024
2025
Citations per year (5y)
869total
20212022202320242025

Selected Papers

15
1
Article|473 citations·2014
Fast Plasmonic Laser Nanowelding for a Cu‐Nanowire Percolation Network for Flexible Transparent Conductors and Stretchable Electronics
Seungyong Han, Sukjoon Hong, Jooyeun Ham, Junyeob Yeo, Jinhwan Lee, Bongchul Kang, Phillip Lee, Jinhyeong Kwon, Seung S. Lee, Min‐Yang Yang, Seung Hwan Ko
SJR Q1Advanced Materials

A facile fast laser nanoscale welding process uses the plasmonic effect at a nanowire (NW) junction to suppress oxidation and successfully fabricate a Cu-NW-based percolation-network conductor. The "nanowelding" process does not require an inert or vacuum environment. Due to the low-temperature and fast-process nature, plasmonic laser nanowelding may form Cu-nanowire networks on heat-sensitive, flexible or even stretchable substrates.

Electrical and Electronic EngineeringEngineering
2
Article|344 citations·2018
Battery-free, wireless sensors for full-body pressure and temperature mapping
Seungyong Han, Jeonghyun Kim, Sang Min Won, Yinji Ma, Daeshik Kang, Zhaoqian Xie, Kyu‐Tae Lee, Ha Uk Chung, Anthony Banks, Seunghwan Min, Seung Yun Heo, Charles R. Davies
SJR Q1Science Translational Medicine

Thin, soft, skin-like sensors capable of precise, continuous measurements of physiological health have broad potential relevance to clinical health care. Use of sensors distributed over a wide area for full-body, spatiotemporal mapping of physiological processes would be a considerable advance for this field. We introduce materials, device designs, wireless power delivery and communication strategies, and overall system architectures for skin-like, battery-free sensors of temperature and pressur

Biomedical EngineeringEngineering
3
Article|188 citations·2013
Subwavelength light focusing using random nanoparticles
Jung‐Hoon Park, Chunghyun Park, Hyeonseung Yu, Jimin Park, Seungyong Han, Jonghwa Shin, Seung Hwan Ko, Ki Tae Nam, Yong‐Hoon Cho, YongKeun Park, Yong‐Hoon Cho, YongKeun Park
SJR Q1Nature Photonics
Acoustics and UltrasonicsPhysics and Astronomy
4
Article|136 citations·2015
Nanorecycling: Monolithic Integration of Copper and Copper Oxide Nanowire Network Electrode through Selective Reversible Photothermochemical Reduction
Seungyong Han, Sukjoon Hong, Junyeob Yeo, Dongkwan Kim, Bongchul Kang, Min‐Yang Yang, Seung Hwan Ko
SJR Q1Advanced Materials

Laser induced selective photothermochemical reduction is demonstrated to locally and reversibly control the oxidation state of Cu and Cu oxide nanowires in ambient conditions without any inert gas environment. This new concept of "nanorecycling" can monolithically integrate Cu and Cu oxide nanowires by restoring oxidized Cu, considered unusable for the electrode, back to a metallic state for repetitive reuse.

Materials ChemistryMaterials Science
5
Article|125 citations·2023
Machine-learned wearable sensors for real-time hand-motion recognition: toward practical applications
Kyung Rok Pyun, Kangkyu Kwon, Myung Jin Yoo, Kyun Kyu Kim, Dohyeon Gong, Woon‐Hong Yeo, Seungyong Han, Seung Hwan Ko
SJR Q1National Science ReviewOA

Soft electromechanical sensors have led to a new paradigm of electronic devices for novel motion-based wearable applications in our daily lives. However, the vast amount of random and unidentified signals generated by complex body motions has hindered the precise recognition and practical application of this technology. Recent advancements in artificial-intelligence technology have enabled significant strides in extracting features from massive and intricate data sets, thereby presenting a break

Biomedical EngineeringEngineering
6
Article|123 citations·2019
Stretchable/flexible silver nanowire electrodes for energy device applications
Jinwook Jung, Hyunmin Cho, Recep Yüksel, Dongkwan Kim, Habeom Lee, Jinhyeong Kwon, Phillip Lee, Junyeob Yeo, Sukjoon Hong, Hüsnü Emrah Ünalan, Seungyong Han, Seung Hwan Ko
SJR Q1NanoscaleOA

Research on sustainable and high-efficiency energy devices has recently emerged as an important global issue. These devices are now moving beyond the form of a bulk, rigid platform to a portable, flexible/stretchable format that is easily available in our daily lives. Similar to the development of an active layer for the production of next-generation energy devices, the fabrication of flexible/stretchable electrodes for the easy flow of electrons is also very important. Silver nanowire electrode

Biomedical EngineeringEngineering
7
Article|119 citations·2016
Mechanically Reinforced Skin‐Electronics with Networked Nanocomposite Elastomer
Seungyong Han, Min Ku Kim, Bo Wang, Dae Seung Wie, Shuodao Wang, Chi Hwan Lee
SJR Q1Advanced Materials

Mechanically reinforced skin-electronics are presented by exploiting networked nanocomposite elastomers where high quality metal nanowires serve as conducting paths. Theoretical and experimental studies show that the established skin-electronics exhibit superior mechanical enhancements against crack and delamination phenomena. Device applications include a class of biomedical devices that offers the ability of thermotherapeutic stimulation and electrophysiological monitoring, all via the skin.

Biomedical EngineeringEngineering
8
Article|108 citations·2021
Vital signal sensing and manipulation of a microscale organ with a multifunctional soft gripper
Yeonwook Roh, Minho Kim, Sang Min Won, Daseul Lim, Insic Hong, Seunggon Lee, Taewi Kim, Changhwan Kim, Doohoe Lee, Sunghoon Im, Gunhee Lee, Dong-Jin Kim
SJR Q1Science Robotics

Soft grippers that incorporate functional materials are important in the development of mechanically compliant and multifunctional interfaces for both sensing and stimulating soft objects and organisms. In particular, the capability for firm and delicate grasping of soft cells and organs without mechanical damage is essential to identify the condition of and monitor meaningful biosignals from objects. Here, we report a millimeter-scale soft gripper based on a shape memory polymer that enables ma

Biomedical EngineeringEngineering
9
Article|76 citations·2022
Actuating compact wearable augmented reality devices by multifunctional artificial muscle
Dong-Jin Kim, Baekgyeom Kim, Bongsu Shin, Dongwook Shin, Chang‐Kun Lee, Jae‐Seung Chung, Juwon Seo, Yun-Tae Kim, Geeyoung Sung, Wontaek Seo, Sunil Kim, Sung‐Hoon Hong
SJR Q1Nature CommunicationsOA

An artificial muscle actuator resolves practical engineering problems in compact wearable devices, which are limited to conventional actuators such as electromagnetic actuators. Abstracting the fundamental advantages of an artificial muscle actuator provides a small-scale, high-power actuating system with a sensing capability for developing varifocal augmented reality glasses and naturally fit haptic gloves. Here, we design a shape memory alloy-based lightweight and high-power artificial muscle

Cognitive NeuroscienceNeuroscience
10
Article|69 citations·2023
Ultra-stable and tough bioinspired crack-based tactile sensor for small legged robots
Taewi Kim, Insic Hong, Minho Kim, Sunghoon Im, Yeonwook Roh, Changhwan Kim, Jongcheon Lim, Dong-Jin Kim, Jieun Park, Seunggon Lee, Daseul Lim, Junggwang Cho
SJR Q1npj Flexible ElectronicsOA

Abstract For legged robots, collecting tactile information is essential for stable posture and efficient gait. However, mounting sensors on small robots weighing less than 1 kg remain challenges in terms of the sensor’s durability, flexibility, sensitivity, and size. Crack-based sensors featuring ultra-sensitivity, small-size, and flexibility could be a promising candidate, but performance degradation due to crack growing by repeated use is a stumbling block. This paper presents an ultra-stable

Biomedical EngineeringEngineering
11
Article|69 citations·2019
Anode‐Free Sodium Metal Batteries Based on Nanohybrid Core–Shell Templates
Min Eui Lee, Seunggon Lee, Jaewon Choi, Hyoung‐Joon Jin, Seungyong Han, Young Soo Yun
SJR Q1Small

Abstract Anode‐free sodium metal batteries (AF‐SMBs) can deliver high energy and enormous power, but their cycle lives are still insufficient for them to be practical as a power source in modern electronic devices and/or grid systems. In this study, a nanohybrid template based on high aspect‐ratio silver nanofibers and nitrogen‐rich carbon thin layers as a core–shell structure is designed to improve the Coulombic efficiency (CE) and cycling performance of AF‐SMBs. The catalytic nanohybrid templa

Electrical and Electronic EngineeringEngineering
12
Article|61 citations·2018
A Transparent and Flexible Capacitive‐Force Touch Pad from High‐Aspect‐Ratio Copper Nanowires with Enhanced Oxidation Resistance for Applications in Wearable Electronics
Dongkwan Kim, Jinhyeong Kwon, Jinwook Jung, Kyunkyu Kim, Habeom Lee, Junyeob Yeo, Sukjoon Hong, Seungyong Han, Seung Hwan Ko
SJR Q1Small Methods

Abstract Copper nanowires are widely utilized for flexible electronics applications due to their excellent electrical conductivity, mechanical flexibility, and optical transparency with very low material cost. While many previous studies are dedicated to developing effective synthesis routes for copper nanowires, most of them have focused on the control of the morphology including length and diameter rather than synthesis yields. Although many postprocessing methods have been established to make

Biomedical EngineeringEngineering
13
Article|59 citations·2018
Study on the oxidation of copper nanowire network electrodes for skin mountable flexible, stretchable and wearable electronics applications
Insic Hong, Seunggon Lee, Dongkwan Kim, Hyunmin Cho, Yeonwook Roh, Hyeongi An, Sukjoon Hong, Seung Hwan Ko, Seungyong Han
SJR Q2Nanotechnology

Copper nanowires (Cu NWs) are suitable material as an electrode for flexible, stretchable and wearable devices due to their excellent mechanical properties, high transparency, good conductivity, and low cost, but oxidation problem limits their practical use and application. In order to use Cu NWs as an electrode for advanced flexible, stretchable and wearable devices attached directly to the skin, the influence of the body temperature on the oxidation of Cu NWs needs to be investigated. In this

Biomedical EngineeringEngineering
14
Article|57 citations·2020
Biocompatible Cost‐Effective Electrophysiological Monitoring with Oxidation‐Free Cu–Au Core–Shell Nanowire
Dongkwan Kim, Junhyuk Bang, Phillip Won, Youngtaek Kim, Jinwook Jung, Jinwoo Lee, Jinhyeong Kwon, Habeom Lee, Sukjoon Hong, Noo Li Jeon, Seungyong Han, Seung Hwan Ko
SJR Q1Advanced Materials Technologies

Abstract In spite of its excellent electrical, mechanical, and low‐cost characteristics, copper nanowire has fatal issues in the oxidation problem and the lack of biological compatibility, which occasionally outweighs its advantages and limits its usage as electronics or biodevice applications. In this study, a novel wet chemical synthesis method is developed for the oxidation‐free Cu–Au core–shell nanowire based on the prepared Cu nanowire with alkylamine‐mediated synthesis and ligand exchange.

Biomedical EngineeringEngineering
15
Article|47 citations·2023
Nature's Blueprint in Bioinspired Materials for Robotics
Yeonwook Roh, Youngseok Lee, Daseul Lim, Dohyeon Gong, Suhyeon Hwang, Minji Kang, Dohyung Kim, Junggwang Cho, Gibeom Kwon, Daeshik Kang, Seungyong Han, Seung Hwan Ko
SJR Q1Advanced Functional Materials

Abstract Soft robotics, an emerging field that focuses on the development of robots utilizing soft, flexible, and deformable materials, is revolutionizing traditional robotics (reliant on rigid materials and motors) and broadening its range of applications and potential uses. In addition, by emulating the structure, function, and characteristics of biological systems, bioinspired materials are facilitating significant progress in a diverse array of soft robotic applications. This review offers a

Condensed Matter PhysicsPhysics and Astronomy

Research Areas

Biomedical EngineeringElectrical and Electronic EngineeringMechanical EngineeringMaterials ChemistryAcoustics and UltrasonicsCognitive Neuroscience

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