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Kang, Seung-Kyun

Seoul National University · 工学

研究室紹介

Professor Kang Seung-Kyun's research lab specializes in the development of transient and bioresorbable electronic systems, focusing on materials that can fully dissolve in biological or environmental fluids on demand. The lab investigates the hydrolysis kinetics and biocompatibility of dielectrics like silicon oxides, nitrides, and silicate-based materials, as well as biodegradable substrates and encapsulants such as polyanhydrides and metal foils. A central theme is enabling temporary, implantable electronics for biomedical and environmental applications, including drug delivery platforms and transient sensors that eliminate the need for surgical removal. The lab combines materials chemistry, semiconductor physics, and bio-integrated device engineering to create sustainable, safe, and programmable electronic systems.

transient electronicsbioresorbable materialsbiodegradable semiconductorscontrolled dissolutionimplantable sensors

Research Overview

Papers
154
Total Citations
9,676
Papers (5y)
64
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
64total
2022
2023
2024
2025
2026
Citations per year (5y)
667total
20222023202420252026

Selected Papers

15
1
Article|983 citations·2016
Bioresorbable silicon electronic sensors for the brain
Seung‐Kyun Kang, Rory K. J. Murphy, Suk‐Won Hwang, Seung Min Lee, Daniel V. Harburg, Neil A. Krueger, Jiho Shin, Paul Gamble, Huanyu Cheng, Sooyoun Yu, Zhuangjian Liu, Jordan G. McCall
SJR Q1Nature
Cellular and Molecular NeuroscienceNeuroscience
2
Article|255 citations·2014
Dissolution Behaviors and Applications of Silicon Oxides and Nitrides in Transient Electronics
Seung‐Kyun Kang, Suk‐Won Hwang, Huanyu Cheng, Sooyoun Yu, Bong Hoon Kim, Jae‐Hwan Kim, Yonggang Huang, John A. Rogers
SJR Q1Advanced Functional Materials

Silicon oxides and nitrides are key materials for dielectrics and encapsulation layers in a class of silicon‐based high performance electronics that has ability to completely dissolve in a controlled fashion with programmable rates, when submerged in bio‐fluids and/or relevant solutions. This type of technology, referred to as “transient electronics”, has potential applications in biomedical implants, environmental sensors, and other envisioned areas. The results presented here provide comprehen

Electrical and Electronic EngineeringEngineering
3
Article|189 citations·2018
Advanced Materials and Devices for Bioresorbable Electronics
Seung‐Kyun Kang, Jahyun Koo, Youn‐Kyoung Lee, John A. Rogers
SJR Q1Accounts of Chemical Research

Recent advances in materials chemistry establish the foundations for unusual classes of electronic systems, characterized by their ability to fully or partially dissolve, disintegrate, or otherwise physically or chemically decompose in a controlled fashion after some defined period of stable operation. Such types of "transient" technologies may enable consumer gadgets that minimize waste streams associated with disposal, implantable sensors that disappear harmlessly in the body, and hardware-sec

Cellular and Molecular NeuroscienceNeuroscience
4
Article|184 citations·2015
Dissolution Chemistry and Biocompatibility of Silicon- and Germanium-Based Semiconductors for Transient Electronics
Seung‐Kyun Kang, Gayoung Park, Kyungmin Kim, Suk‐Won Hwang, Huanyu Cheng, Jiho Shin, Sang‐Jin Chung, Minjin Kim, Lan Yin, Jeong Chul Lee, Kyung‐Mi Lee, John A. Rogers
SJR Q1ACS Applied Materials & Interfaces

Semiconducting materials are central to the development of high-performance electronics that are capable of dissolving completely when immersed in aqueous solutions, groundwater, or biofluids, for applications in temporary biomedical implants, environmentally degradable sensors, and other systems. The results reported here include comprehensive studies of the dissolution by hydrolysis of polycrystalline silicon, amorphous silicon, silicon-germanium, and germanium in aqueous solutions of various

Materials ChemistryMaterials Science
5
Article|171 citations·2015
Biodegradable Thin Metal Foils and Spin‐On Glass Materials for Transient Electronics
Seung‐Kyun Kang, Suk‐Won Hwang, Sooyoun Yu, Jung‐Hun Seo, Elise A. Corbin, Jiho Shin, Dae Seung Wie, Rashid Bashir, Zhenqiang Ma, John A. Rogers
SJR Q1Advanced Functional Materials

Biodegradable substrates and encapsulating materials play critical roles in the development of an emerging class of semiconductor technology, generally referred as “transient electronics”, whose key characteristic is an ability to dissolve completely, in a controlled manner, upon immersion in ground water or biofluids. The results presented here introduce the use of thin foils of Mo, Fe, W, or Zn as biodegradable substrates and silicate spin‐on‐glass (SOG) materials as insulating and encapsulati

BiomaterialsMaterials Science
6
Article|153 citations·2020
Wirelessly controlled, bioresorbable drug delivery device with active valves that exploit electrochemically triggered crevice corrosion
Jahyun Koo, Sung Bong Kim, Yeon Sik Choi, Zhaoqian Xie, Amay J. Bandodkar, Jawad M. Khalifeh, Ying Yan, Hojun Kim, Maryam Kherad Pezhouh, Karen Doty, Geumbee Lee, Yu-Yu Chen
SJR Q1Science AdvancesOA

Implantable drug release platforms that offer wirelessly programmable control over pharmacokinetics have potential in advanced treatment protocols for hormone imbalances, malignant cancers, diabetic conditions, and others. We present a system with this type of functionality in which the constituent materials undergo complete bioresorption to eliminate device load from the patient after completing the final stage of the release process. Here, bioresorbable polyanhydride reservoirs store drugs in

Materials ChemistryMaterials Science
7
Article|117 citations·2020
Biodegradable Polyanhydrides as Encapsulation Layers for Transient Electronics
Yeon Sik Choi, Jahyun Koo, Young Joong Lee, Geumbee Lee, Raudel Avila, Hanze Ying, Jonathan T. Reeder, Leonhard Hambitzer, Kyungtaek Im, Kim Jungwon, Kyung‐Mi Lee, Jianjun Cheng
SJR Q1Advanced Functional Materials

Abstract Bioresorbable electronic systems represent an emerging class of technology of interest due to their ability to dissolve, chemically degrade, disintegrate, and/or otherwise physically disappear harmlessly in biological environments, as the basis for temporary implants that avoid the need for secondary surgical extraction procedures. Polyanhydride‐based polymers can serve as hydrophobic encapsulation layers for such systems, as a subset of the broader field of transient electronics, where

Biomedical EngineeringEngineering
8
Article|109 citations·2021
Physically transient electronic materials and devices
Jun‐Seok Shim, John A. Rogers, Seung‐Kyun Kang
SJR Q1Materials Science and Engineering R ReportsOA

Transient electronics, which can be tuned to be completely or partially dissoluble, degradable, and disintegrable, create new opportunities in the upcoming ubiquitous electronics era that are inaccessible with conventional permanent electronics. This emerging field offers unique electronic applications in environmentally degradable eco-devices with minimal or zero waste, biodegradable medical implants not requiring secondary removal surgery, and hardware-based security devices with self-destruct

Biomedical EngineeringEngineering
9
Article|106 citations·2013
Extended expanding cavity model for measurement of flow properties using instrumented spherical indentation
Seung‐Kyun Kang, Young-Cheon Kim, Kug-Hwan Kim, Ju‐Young Kim, Dongil Kwon
SJR Q1International Journal of Plasticity
Mechanics of MaterialsEngineering
10
Article|70 citations·2024
A biodegradable and self-deployable electronic tent electrode for brain cortex interfacing
Jae‐Young Bae, Gyeong‐Seok Hwang, Young-Seo Kim, Jooik Jeon, Minseong Chae, Joon‐Woo Kim, Sian Lee, Seongchan Kim, Soo‐Hwan Lee, Sung‐Geun Choi, Ju‐Yong Lee, Jae‐Hwan Lee
SJR Q1Nature Electronics
Cellular and Molecular NeuroscienceNeuroscience
11
Article|60 citations·2020
The emergence of transient electronic devices
Seung‐Kyun Kang, Lan Yin, Christopher J. Bettinger
SJR Q1MRS BulletinOA
Electrical and Electronic EngineeringEngineering
12
Article|59 citations·2010
Conventional Vickers and true instrumented indentation hardness determined by instrumented indentation tests
Seung‐Kyun Kang, Ju‐Young Kim, Chan-Pyoung Park, Hyun-Uk Kim, Dongil Kwon
SJR Q2Journal of materials research/Pratt's guide to venture capital sourcesOA
Mechanics of MaterialsEngineering
13
Article|53 citations·2024
Hypersensitive meta-crack strain sensor for real-time biomedical monitoring
J. Y. Lee, J. Y. Lee, Yoon-Nam Kim, Junsang Lee, Junsang Lee, Jooik Jeon, Jae‐Young Bae, Ju-Yong Lee, Ju-Yong Lee, Kyung‐Sub Kim, Minseong Chae, Hyunjun Park
SJR Q1Science AdvancesOA

Real-time monitoring of infinitesimal deformations on complex morphologies is essential for precision biomechanical engineering. While flexible strain sensors facilitate real-time monitoring with shape-adaptive properties, their sensitivity is generally lower than spectroscopic imaging methods. Crack-based strain sensors achieve enhanced sensitivity with gauge factors (GFs) exceeding 30,000; however, such GFs are only attainable at large strains exceeding several percent and decline below 10 for

Biomedical EngineeringEngineering
14
Article|48 citations·2014
Constitutive equations optimized for determining strengths of metallic alloys
Seung‐Kyun Kang, Young-Cheon Kim, Kug-Hwan Kim, Dongil Kwon, Ju‐Young Kim
SJR Q1Mechanics of Materials
Materials ChemistryMaterials Science
15
Article|47 citations·2021
Biodegradable Metallic Glass for Stretchable Transient Electronics
Jae‐Young Bae, Eun‐Ji Gwak, Gyeong‐Seok Hwang, Hae Won Hwang, Dong‐Ju Lee, Jong‐Sung Lee, Young‐Chang Joo, Jeong‐Yun Sun, Sang-Ho Jun, Myoung‐Ryul Ok, Ju‐Young Kim, Seung‐Kyun Kang
SJR Q1Advanced ScienceOA

Biodegradable electronics are disposable green devices whose constituents decompose into harmless byproducts, leaving no residual waste and minimally invasive medical implants requiring no removal surgery. Stretchable and flexible form factors are essential in biointegrated electronic applications for conformal integration with soft and expandable skins, tissues, and organs. Here a fully biodegradable MgZnCa metallic glass (MG) film is proposed for intrinsically stretchable electrodes with a hig

Biomedical EngineeringEngineering

Research Areas

Biomedical EngineeringMechanics of MaterialsCellular and Molecular NeuroscienceElectrical and Electronic EngineeringMechanical EngineeringMaterials Chemistry

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