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Daehyung Kim

Seoul National University · 工学

研究室紹介

Professor Daehyung Kim's research lab specializes in the development of advanced flexible, stretchable, and biocompatible electronic systems for biomedical applications. The lab focuses on creating mechanically invisible, conformal devices that integrate high-performance inorganic semiconductors—such as silicon nanoribbons—with ultrathin, elastomeric substrates to enable long-term, reliable health monitoring. A key direction involves designing transient electronics that safely dissolve in the body after use, offering new possibilities for implantable and disposable medical devices. The lab also pioneers wearable systems that combine real-time biosensing with active therapeutic functions, such as feedback-controlled drug delivery.

flexible electronicsbiocompatible devicestransient electronicswearable biosensorsimplantable systems

Research Overview

Papers
293
Total Citations
49,531
Papers (5y)
97
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
97total
2022
2023
2024
2025
2026
Citations per year (5y)
4,780total
20222023202420252026

Selected Papers

15
1
Article|4,611 citations·2011
Epidermal Electronics
Dae‐Hyeong Kim, Nanshu Lu, Rui Ma, Yun‐Soung Kim, Rak-Hwan Kim, Shuodao Wang, Jian Wu, Sang Min Won, Tao Hu, Ahmad E. Islam, Ki Jun Yu, Tae‐il Kim
SJR Q1ScienceOA

We report classes of electronic systems that achieve thicknesses, effective elastic moduli, bending stiffnesses, and areal mass densities matched to the epidermis. Unlike traditional wafer-based technologies, laminating such devices onto the skin leads to conformal contact and adequate adhesion based on van der Waals interactions alone, in a manner that is mechanically invisible to the user. We describe systems incorporating electrophysiological, temperature, and strain sensors, as well as trans

Biomedical EngineeringEngineering
2
Article|1,779 citations·2016
A graphene-based electrochemical device with thermoresponsive microneedles for diabetes monitoring and therapy
Hyunjae Lee, Tae‐Kyu Choi, Young Bum Lee, Hye Rim Cho, Roozbeh Ghaffari, Liu Wang, Hyung Jin Choi, Taek Dong Chung, Nanshu Lu, Taeghwan Hyeon, Seung Hong Choi, Dae‐Hyeong Kim
SJR Q1Nature Nanotechnology
Electrical and Electronic EngineeringEngineering
3
Article|1,706 citations·2010
Dissolvable films of silk fibroin for ultrathin conformal bio-integrated electronics
Dae‐Hyeong Kim, Jonathan Viventi, Jason J. Amsden, Jianliang Xiao, Leif Vigeland, Yun‐Soung Kim, Justin A. Blanco, Bruce Panilaitis, Éric Fréchette, Diego Contreras, David L. Kaplan, Fiorenzo G. Omenetto
SJR Q1Nature MaterialsOA
Cellular and Molecular NeuroscienceNeuroscience
4
Article|1,665 citations·2008
Stretchable and Foldable Silicon Integrated Circuits
Dae‐Hyeong Kim, Jong‐Hyun Ahn, Won Mook Choi, Hoon‐Sik Kim, Tae‐Ho Kim, Jizhou Song, Yonggang Huang, Zhuangjian Liu, C. Lu, John A. Rogers
SJR Q1Science

We have developed a simple approach to high-performance, stretchable, and foldable integrated circuits. The systems integrate inorganic electronic materials, including aligned arrays of nanoribbons of single crystalline silicon, with ultrathin plastic and elastomeric substrates. The designs combine multilayer neutral mechanical plane layouts and "wavy" structural configurations in silicon complementary logic gates, ring oscillators, and differential amplifiers. We performed three-dimensional ana

Biomedical EngineeringEngineering
5
Article|1,454 citations·2014
Multifunctional wearable devices for diagnosis and therapy of movement disorders
Donghee Son, Jongha Lee, Shutao Qiao, Roozbeh Ghaffari, Jaemin Kim, Ji Eun Lee, Changyeong Song, Seok Joo Kim, Dong Jun Lee, Samuel Woojoo Jun, Shixuan Yang, Minjoon Park
SJR Q1Nature Nanotechnology
Biomedical EngineeringEngineering
6
Article|1,420 citations·2014
Stretchable silicon nanoribbon electronics for skin prosthesis
Jaemin Kim, Min‐Cheol Lee, Hyung Joon Shim, Roozbeh Ghaffari, Hye Rim Cho, Donghee Son, Yei Hwan Jung, Min Soh, Changsoon Choi, Sungmook Jung, Kon Chu, Daejong Jeon
SJR Q1Nature CommunicationsOA
Biomedical EngineeringEngineering
7
Article|1,264 citations·2012
A Physically Transient Form of Silicon Electronics
Suk‐Won Hwang, Hu Tao, Dae‐Hyeong Kim, Huanyu Cheng, Jun-Kyul Song, Elliott Rill, Mark A. Brenckle, Bruce Panilaitis, Sang Min Won, Yun‐Soung Kim, Young Min Song, Ki Jun Yu
SJR Q1ScienceOA

A remarkable feature of modern silicon electronics is its ability to remain physically invariant, almost indefinitely for practical purposes. Although this characteristic is a hallmark of applications of integrated circuits that exist today, there might be opportunities for systems that offer the opposite behavior, such as implantable devices that function for medically useful time frames but then completely disappear via resorption by the body. We report a set of materials, manufacturing scheme

Materials ChemistryMaterials Science
8
Article|1,106 citations·2017
Wearable/disposable sweat-based glucose monitoring device with multistage transdermal drug delivery module
Hyunjae Lee, Changyeong Song, Yong Seok Hong, Minsung Kim, Hye Rim Cho, Taegyu Kang, Kwangsoo Shin, Seung Hong Choi, Taeghwan Hyeon, Dae‐Hyeong Kim
SJR Q1Science AdvancesOA

Electrochemical analysis of sweat using soft bioelectronics on human skin provides a new route for noninvasive glucose monitoring without painful blood collection. However, sweat-based glucose sensing still faces many challenges, such as difficulty in sweat collection, activity variation of glucose oxidase due to lactic acid secretion and ambient temperature changes, and delamination of the enzyme when exposed to mechanical friction and skin deformation. Precise point-of-care therapy in response

Biomedical EngineeringEngineering
9
Article|1,089 citations·2016
Recent Advances in Flexible and Stretchable Bio‐Electronic Devices Integrated with Nanomaterials
Suji Choi, Hyunjae Lee, Roozbeh Ghaffari, Taeghwan Hyeon, Dae‐Hyeong Kim
SJR Q1Advanced Materials

Flexible and stretchable electronics and optoelectronics configured in soft, water resistant formats uniquely address seminal challenges in biomedicine. Over the past decade, there has been enormous progress in the materials, designs, and manufacturing processes for flexible/stretchable system subcomponents, including transistors, amplifiers, bio-sensors, actuators, light emitting diodes, photodetector arrays, photovoltaics, energy storage elements, and bare die integrated circuits. Nanomaterial

Biomedical EngineeringEngineering
10
Article|969 citations·2018
Highly conductive, stretchable and biocompatible Ag–Au core–sheath nanowire composite for wearable and implantable bioelectronics
Suji Choi, Sang Ihn Han, Dongjun Jung, Hye Jin Hwang, Chaehong Lim, Soochan Bae, Ok Kyu Park, Cory M. Tschabrunn, Min‐Cheol Lee, Sun Youn Bae, Ji Woong Yu, Ji Ho Ryu
SJR Q1Nature Nanotechnology
Biomedical EngineeringEngineering
11
Review|766 citations·2018
Enzyme‐Based Glucose Sensor: From Invasive to Wearable Device
Hyunjae Lee, Yongseok Joseph Hong, Seungmin Baik, Taeghwan Hyeon, Dae‐Hyeong Kim
SJR Q1Advanced Healthcare Materials

Blood glucose concentration is a key indicator of patients' health, particularly for symptoms associated with diabetes mellitus. Because of the large number of diabetic patients, many approaches for glucose measurement have been studied to enable continuous and accurate glucose level monitoring. Among them, electrochemical analysis is prominent because it is simple and quantitative. This technology has been incorporated into commercialized and research-level devices from simple test strips to we

Electrical and Electronic EngineeringEngineering
12
Article|763 citations·2011
Materials for multifunctional balloon catheters with capabilities in cardiac electrophysiological mapping and ablation therapy
Dae‐Hyeong Kim, Nanshu Lu, Roozbeh Ghaffari, Yun‐Soung Kim, Stephen P. Lee, Lizhi Xu, Jian Wu, Rak-Hwan Kim, Jizhou Song, Zhuangjian Liu, Jonathan Viventi, Bassel de Graff
SJR Q1Nature MaterialsOA
Biomedical EngineeringEngineering
13
Review|728 citations·2012
Flexible and Stretchable Electronics for Biointegrated Devices
Dae‐Hyeong Kim, Roozbeh Ghaffari, Nanshu Lu, John A. Rogers
SJR Q1Annual Review of Biomedical Engineering

Advances in materials, mechanics, and manufacturing now allow construction of high-quality electronics and optoelectronics in forms that can readily integrate with the soft, curvilinear, and time-dynamic surfaces of the human body. The resulting capabilities create new opportunities for studying disease states, improving surgical procedures, monitoring health/wellness, establishing human-machine interfaces, and performing other functions. This review summarizes these technologies and illustrates

Cellular and Molecular NeuroscienceNeuroscience
14
Article|723 citations·2008
Materials and noncoplanar mesh designs for integrated circuits with linear elastic responses to extreme mechanical deformations
Dae‐Hyeong Kim, Jizhou Song, Won Mook Choi, Hoon‐Sik Kim, Rak-Hwan Kim, Zhuangjian Liu, Yonggang Huang, Keh-Chih Hwang, Yong‐Wei Zhang, John A. Rogers
SJR Q1Proceedings of the National Academy of SciencesOA

Electronic systems that offer elastic mechanical responses to high-strain deformations are of growing interest because of their ability to enable new biomedical devices and other applications whose requirements are impossible to satisfy with conventional wafer-based technologies or even with those that offer simple bendability. This article introduces materials and mechanical design strategies for classes of electronic circuits that offer extremely high stretchability, enabling them to accommoda

Biomedical EngineeringEngineering
15
Article|688 citations·2015
Wearable red–green–blue quantum dot light-emitting diode array using high-resolution intaglio transfer printing
Moon Kee Choi, Jiwoong Yang, Kwanghun Kang, Dong Chan Kim, Changsoon Choi, Chaneui Park, Seok Joo Kim, Sue In Chae, Tae‐Ho Kim, Ji Hoon Kim, Taeghwan Hyeon, Dae‐Hyeong Kim
SJR Q1Nature CommunicationsOA

Deformable full-colour light-emitting diodes with ultrafine pixels are essential for wearable electronics, which requires the conformal integration on curvilinear surface as well as retina-like high-definition displays. However, there are remaining challenges in terms of polychromatic configuration, electroluminescence efficiency and/or multidirectional deformability. Here we present ultra-thin, wearable colloidal quantum dot light-emitting diode arrays utilizing the intaglio transfer printing t

Materials ChemistryMaterials Science

Research Areas

Biomedical EngineeringElectrical and Electronic EngineeringCellular and Molecular NeuroscienceMaterials ChemistryRenewable Energy, Sustainability and the EnvironmentMechanical Engineering

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