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Suk‐Won Hwang

Korea University · Engineering

About the Lab

Professor Suk-Won Hwang's research lab specializes in the development of transient and biodegradable electronics, focusing on materials, device architectures, and manufacturing processes that enable electronic systems to dissolve completely in biological or environmental fluids. The lab pioneers silicon-based complementary metal oxide semiconductor (CMOS) technologies using ultrathin silicon nanomembranes, biocompatible metals like magnesium, and biodegradable substrates such as silk, all designed to function temporarily before safe resorption. Key research directions include implantable medical devices, eco-friendly electronics, and secure data systems with built-in self-destruct mechanisms. The lab integrates materials science, microfabrication, and mechanics modeling to design systems that degrade on demand in controlled, programmable ways.

transient electronicsbiodegradable materialsimplantable devicessustainable electronicsbioresorbable circuits

Research Overview

Papers
113
Total Citations
11,084
Papers (5y)
50
Primary Field
Engineering

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
50total
2022
2023
2024
2025
2026
Citations per year (5y)
939total
20222023202420252026

Selected Papers

15
1
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
2
Article|423 citations·2014
High‐Performance Biodegradable/Transient Electronics on Biodegradable Polymers
Suk‐Won Hwang, Jun‐Kyul Song, Xian Huang, Huanyu Cheng, Seung‐Kyun Kang, Bong Hoon Kim, Jae‐Hwan Kim, Sooyoun Yu, Yonggang Huang, John A. Rogers
SJR Q1Advanced Materials

Materials and fabrication approaches that allow integration of biodegradable/transient electronics onto diverse classes of biodegradable substrates are presented in this article. By first depositing, patterning, and etching the materials for the electronics and then integrating them on a substrate of interest, it is possible to use nearly any type of biodegradable material for this purpose. Component and system-level studies of various devices and biodegradable polymers illustrate the capabiliti

Biomedical EngineeringEngineering
3
Article|341 citations·2015
Biodegradable Elastomers and Silicon Nanomembranes/Nanoribbons for Stretchable, Transient Electronics, and Biosensors
Suk‐Won Hwang, Chi Hwan Lee, Huanyu Cheng, Jae‐Woong Jeong, Seung‐Kyun Kang, Jae-Hwan Kim, Jiho Shin, Jian Yang, Zhuangjian Liu, Guillermo A. Ameer, Yonggang Huang, John A. Rogers
SJR Q1Nano Letters

Transient electronics represents an emerging class of technology that exploits materials and/or device constructs that are capable of physically disappearing or disintegrating in a controlled manner at programmed rates or times. Inorganic semiconductor nanomaterials such as silicon nanomembranes/nanoribbons provide attractive choices for active elements in transistors, diodes and other essential components of overall systems that dissolve completely by hydrolysis in biofluids or groundwater. We

Biomedical EngineeringEngineering
4
Article|254 citations·2013
Materials and Fabrication Processes for Transient and Bioresorbable High‐Performance Electronics
Suk‐Won Hwang, Dae‐Hyeong Kim, Tao Hu, Tae‐il Kim, Stanley E. Kim, Ki Jun Yu, Bruce Panilaitis, Jae‐Woong Jeong, Jun‐Kyul Song, Fiorenzo G. Omenetto, John A. Rogers
SJR Q1Advanced Functional Materials

Abstract Materials and fabrication procedures are described for bioresorbable transistors and simple integrated circuits, in which the key processing steps occur on silicon wafer substrates, in schemes compatible with methods used in conventional microelectronics. The approach relies on an unusual type of silicon on insulator wafer to yield devices that exploit ultrathin sheets of monocrystalline silicon for the semiconductor, thin films of magnesium for the electrodes and interconnects, silicon

Biomedical EngineeringEngineering
5
Review|215 citations·2020
Advanced Materials and Systems for Biodegradable, Transient Electronics
Won Bae Han, Joong Hoon Lee, Jeong‐Woong Shin, Suk‐Won Hwang
SJR Q1Advanced Materials

Transient electronics refers to an emerging class of advanced technology, defined by an ability to chemically or physically dissolve, disintegrate, and degrade in actively or passively controlled fashions to leave environmentally and physiologically harmless by-products in environments, particularly in bio-fluids or aqueous solutions. The unusual properties that are opposite to operational modes in conventional electronics for a nearly infinite time frame offer unprecedented opportunities in res

Biomedical EngineeringEngineering
6
Article|208 citations·2013
Materials for Bioresorbable Radio Frequency Electronics
Suk‐Won Hwang, Xian Huang, Jung‐Hun Seo, Jun‐Kyul Song, Stanley E. Kim, Sami Hage‐Ali, Hyun‐Joong Chung, Tao Hu, Fiorenzo G. Omenetto, Zhenqiang Ma, John A. Rogers
SJR Q1Advanced Materials

Materials, device designs and manufacturing approaches are presented for classes of RF electronic components that are capable of complete dissolution in water or biofluids. All individual passive/active components as well as system-level examples such as wireless RF energy harvesting circuits exploit active materials that are biocompatible. The results provide diverse building blocks for physically transient forms of electronics, of particular potential value in bioresorbable medical implants wi

Electrical and Electronic EngineeringEngineering
7
Article|200 citations·2014
Dissolution Chemistry and Biocompatibility of Single-Crystalline Silicon Nanomembranes and Associated Materials for Transient Electronics
Suk‐Won Hwang, Gayoung Park, Chris Edwards, Elise A. Corbin, Seung‐Kyun Kang, Huanyu Cheng, Jun-Kyul Song, Jae-Hwan Kim, Sooyoun Yu, Joanne Ng, Jung Eun Lee, Jiyoung Kim
SJR Q1ACS Nano

Single-crystalline silicon nanomembranes (Si NMs) represent a critically important class of material for high-performance forms of electronics that are capable of complete, controlled dissolution when immersed in water and/or biofluids, sometimes referred to as a type of "transient" electronics. The results reported here include the kinetics of hydrolysis of Si NMs in biofluids and various aqueous solutions through a range of relevant pH values, ionic concentrations and temperatures, and depende

Biomedical EngineeringEngineering
8
Review|191 citations·2014
25th Anniversary Article: Materials for High‐Performance Biodegradable Semiconductor Devices
Suk‐Won Hwang, Gayoung Park, Huanyu Cheng, Jun‐Kyul Song, Seung‐Kyun Kang, Lan Yin, Jae‐Hwan Kim, Fiorenzo G. Omenetto, Yonggang Huang, Kyung‐Mi Lee, John A. Rogers
SJR Q1Advanced Materials

We review recent progress in a class of silicon-based electronics that is capable of complete, controlled dissolution when immersed in water or bio-fluids. This type of technology, referred to in a broader sense as transient electronics, has potential applications in resorbable biomedical devices, eco-friendly electronics, environmental sensors, secure hardware systems and others. New results reported here include studies of the kinetics of hydrolysis of nanomembranes of single crystalline silic

Biomedical EngineeringEngineering
9
Article|144 citations·2023
Ultra-stretchable and biodegradable elastomers for soft, transient electronics
Won Bae Han, Gwan‐Jin Ko, Kang-Gon Lee, Donghak Kim, Joong Hoon Lee, Seung Min Yang, Dong‐Je Kim, Jeong‐Woong Shin, Tae‐Min Jang, Sungkeun Han, Honglei Zhou, Heeseok Kang
SJR Q1Nature CommunicationsOA

As rubber-like elastomers have led to scientific breakthroughs in soft, stretchable characteristics-based wearable, implantable electronic devices or relevant research fields, developments of degradable elastomers with comparable mechanical properties could bring similar technological innovations in transient, bioresorbable electronics or expansion into unexplored areas. Here, we introduce ultra-stretchable, biodegradable elastomers capable of stretching up to ~1600% with outstanding properties

Biomedical EngineeringEngineering
10
Article|121 citations·2020
3D Printed, Customizable, and Multifunctional Smart Electronic Eyeglasses for Wearable Healthcare Systems and Human–Machine Interfaces
Joong Hoon Lee, Hanseop Kim, Ji‐Young Hwang, Jinmook Chung, Tae‐Min Jang, Dong Gyu Seo, Yuyan Gao, Junhyun Lee, Haedong Park, Seungwoo Lee, Hong Chul Moon, Huanyu Cheng
SJR Q1ACS Applied Materials & Interfaces

Personal accessories such as glasses and watches that we usually carry in our daily life can yield useful information from the human body, yet most of them are limited to exercise-related parameters or simple heart rates. Since these restricted characteristics might arise from interfaces between the body and items as one of the main reasons, an interface design considering such a factor can provide us with biologically meaningful data. Here, we describe three-dimensional-printed, personalized, m

Biomedical EngineeringEngineering
11
Article|98 citations·2014
Materials for Programmed, Functional Transformation in Transient Electronic Systems
Suk‐Won Hwang, Seung‐Kyun Kang, Xian Huang, Mark A. Brenckle, Fiorenzo G. Omenetto, John A. Rogers
SJR Q1Advanced Materials

Materials and device designs are presented for electronic systems that undergo functional transformation by a controlled time sequence in the dissolution of active materials and/or encapsulation layers. Demonstration examples include various biocompatible, multifunctional systems with autonomous behavior defined by materials selection and layout.

Biomedical EngineeringEngineering
12
Article|86 citations·2023
Zebra-inspired stretchable, biodegradable radiation modulator for all-day sustainable energy harvesters
Won Bae Han, Se‐Yeon Heo, Donghak Kim, Donghak Kim, Seung Min Yang, Gwan‐Jin Ko, Gil Ju Lee, Dong‐Je Kim, Dong‐Je Kim, Kaveti Rajaram, Joong Hoon Lee, Jeong‐Woong Shin
SJR Q1Science AdvancesOA

Recent advances in passive radiative cooling systems describe a variety of strategies to enhance cooling efficiency, while the integration of such technology with a bioinspired design using biodegradable materials can offer a research opportunity to generate energy in a sustainable manner, favorable for the temperature/climate system of the planet. Here, we introduce stretchable and ecoresorbable radiative cooling/heating systems engineered with zebra stripe-like patterns that enable the generat

Civil and Structural EngineeringEngineering
13
Article|82 citations·2020
Expandable and implantable bioelectronic complex for analyzing and regulating real-time activity of the urinary bladder
Tae‐Min Jang, Joong Hoon Lee, Honglei Zhou, Jaesun Joo, Bong Hee Lim, Huanyu Cheng, Soo Hyun Kim, Il‐Suk Kang, Kyu‐Sung Lee, Eunkyoung Park, Suk‐Won Hwang
SJR Q1Science AdvancesOA

Underactive bladder or detrusor underactivity (DUA), that is, not being able to micturate, has received less attention with little research and remains unknown or limited on pathological causes and treatments as opposed to overactive bladder, although the syndrome may pose a risk of urinary infections or life-threatening kidney damage. Here, we present an integrated expandable electronic and optoelectronic complex that behaves as a single body with the elastic, time-dynamic urinary bladder with

Cellular and Molecular NeuroscienceNeuroscience
14
Article|69 citations·2018
Bioresorbable Silicon Nanomembranes and Iron Catalyst Nanoparticles for Flexible, Transient Electrochemical Dopamine Monitors
Hyun‐Seung Kim, Seung Min Yang, Tae‐Min Jang, Nuri Oh, Hee‐Soo Kim, Suk‐Won Hwang
SJR Q1Advanced Healthcare Materials

A strategy of materials synthesis, characteristic evaluations, and manufacturing process for a mechanically elastic, biologically safe silicon-based dopamine detector that is designed to be completely transient, i.e., dissolved in water and/or biofluids, potentially in the brain after a desired period of operation, is introduced. Use of inexpensive, bioresorbable iron (Fe)-based nanoparticles (NPs) is one of the attractive choices for efficient catalytic oxidation of dopamine as an alternative f

Cellular and Molecular NeuroscienceNeuroscience
15
Article|66 citations·2018
Flexible Conductive Composite Integrated with Personal Earphone for Wireless, Real-Time Monitoring of Electrophysiological Signs
Joong Hoon Lee, Ji‐Young Hwang, Jia Zhu, Ha Ryeon Hwang, Seung Min Lee, Huanyu Cheng, Sang‐Hoon Lee, Suk‐Won Hwang
SJR Q1ACS Applied Materials & Interfaces

We introduce optimized elastomeric conductive electrodes using a mixture of silver nanowires (AgNWs) with carbon nanotubes/polydimethylsiloxane (CNTs/PDMS), to build a portable earphone type of wearable system that is designed to enable recording electrophysiological activities as well as listening to music at the same time. A custom-built, plastic frame integrated with soft, deformable fabric-based memory foam of earmuffs facilitates essential electronic components, such as conductive elastomer

Biomedical EngineeringEngineering

Research Areas

Biomedical EngineeringBiomaterialsCellular and Molecular NeuroscienceElectrical and Electronic EngineeringMechanical EngineeringMaterials Chemistry

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