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Keon Jae Lee

Korea Advanced Institute of Science and Technology · 工学

研究室紹介

Professor Keon Jae Lee's research lab specializes in advanced piezoelectric and nanocomposite materials for flexible, stretchable, and self-powered electronic systems. The lab focuses on developing high-performance energy harvesters, wearable biosensors, and smart acoustic sensors using novel materials such as PZT, PMN-PT, BaTiO3, and carbon-based nanomaterials. Key research directions include energy harvesting from human motion, real-time physiological monitoring, and integration with artificial intelligence for next-generation wearable and implantable medical devices.

piezoelectric nanogeneratorswearable biosensorsflexible energy harvestersself-powered systemsnanocomposite materials

Research Overview

Papers
248
Total Citations
20,896
Papers (5y)
46
Primary Field
工学

Research Output Trend

Figures are computed from collected data and may differ slightly.

Publications per year (5y)
46total
2021
2022
2023
2024
2025
Citations per year (5y)
1,829total
20212022202320242025

Selected Papers

15
1
Article|820 citations·2010
Piezoelectric BaTiO3Thin Film Nanogenerator on Plastic Substrates
Kwi‐Il Park, Sheng Xu, Ying Liu, Geon‐Tae Hwang, Suk‐Joong L. Kang, Zhong Lin Wang, Keon Jae Lee
SJR Q1Nano Letters

The piezoelectric generation of perovskite BaTiO3 thin films on a flexible substrate has been applied to convert mechanical energy to electrical energy for the first time. Ferroelectric BaTiO3 thin films were deposited by radio frequency magnetron sputtering on a Pt/Ti/SiO2/(100) Si substrate and poled under an electric field of 100 kV/cm. The metal-insulator (BaTiO3)-metal-structured ribbons were successfully transferred onto a flexible substrate and connected by interdigitated electrodes. When

Biomedical EngineeringEngineering
2
Article|816 citations·2014
Highly‐Efficient, Flexible Piezoelectric PZT Thin Film Nanogenerator on Plastic Substrates
Kwi‐Il Park, Jung Hwan Son, Geon‐Tae Hwang, Chang Kyu Jeong, Jungho Ryu, Min Koo, Insung Choi, Seung Hyun Lee, Myunghwan Byun, Zhong Lin Wang, Keon Jae Lee
SJR Q1Advanced Materials

A highly-efficient, flexible piezoelectric PZT thin film nanogenerator is demonstrated using a laser lift-off (LLO) process. The PZT thin film nanogenerator harvests the highest output performance of ∼200 V and ∼150 μA·cm(-2) from regular bending motions. Furthermore, power sources generated from a PZT thin film nanogenerator, driven by slight human finger bending motions, successfully operate over 100 LEDs.

Biomedical EngineeringEngineering
3
Article|698 citations·2012
Flexible Nanocomposite Generator Made of BaTiO3 Nanoparticles and Graphitic Carbons
Kwi‐Il Park, M. K. Lee, Ying Liu, San Moon, Geon‐Tae Hwang, Guang Zhu, Ji Eun Kim, Sang Ouk Kim, Do Kyung Kim, Zhong Lin Wang, Keon Jae Lee
SJR Q1Advanced Materials

A nanocomposite generator (NCG) is fabricated using piezoelectric BaTiO3 nanoparticles and universal graphitic carbons (carbon nanotubes and reduced graphene oxide). A piezoelectric nanocomposite is produced by the simple process of dispersing nanoparticles and carbon-based nanomaterials in a polydimethylsiloxane matrix and subsequent spin-casting onto a metal-coated plastic substrate. The NCG device generates an output voltage of ∼3.2 V and a current of ∼350 nA under periodic mechanical deforma

Biomedical EngineeringEngineering
4
Article|689 citations·2017
Self‐Powered Real‐Time Arterial Pulse Monitoring Using Ultrathin Epidermal Piezoelectric Sensors
Dae Yong Park, Daniel J. Joe, Dong Hyun Kim, Hyewon Park, Jae Hyun Han, Chang Kyu Jeong, Hyelim Park, Jung Gyu Park, Boyoung Joung, Keon Jae Lee
SJR Q1Advanced MaterialsOA

Continuous monitoring of an arterial pulse using a pressure sensor attached on the epidermis is an important technology for detecting the early onset of cardiovascular disease and assessing personal health status. Conventional pulse sensors have the capability of detecting human biosignals, but have significant drawbacks of power consumption issues that limit sustainable operation of wearable medical devices. Here, a self‐powered piezoelectric pulse sensor is demonstrated to enable in vivo measu

Biomedical EngineeringEngineering
5
Article|654 citations·2014
Self‐Powered Cardiac Pacemaker Enabled by Flexible Single Crystalline PMN‐PT Piezoelectric Energy Harvester
Geon‐Tae Hwang, Hyewon Park, Jeong‐Ho Lee, SeKwon Oh, Kwi‐Il Park, Myunghwan Byun, Hyelim Park, Gun Ahn, Chang Kyu Jeong, Kwangsoo No, HyukSang Kwon, Sang‐Goo Lee
SJR Q1Advanced MaterialsOA

A flexible single-crystalline PMN-PT piezoelectric energy harvester is demonstrated to achieve a self-powered artificial cardiac pacemaker. The energy-harvesting device generates a short-circuit current of 0.223 mA and an open-circuit voltage of 8.2 V, which are enough not only to meet the standard for charging commercial batteries but also for stimulating the heart without an external power source.

Biomedical EngineeringEngineering
6
Article|559 citations·2012
Bendable Inorganic Thin-Film Battery for Fully Flexible Electronic Systems
Min Koo, Kwi‐Il Park, Seung Hyun Lee, Minwon Suh, Duk Young Jeon, Jang Wook Choi, Kisuk Kang, Keon Jae Lee
SJR Q1Nano Letters

High-performance flexible power sources have gained attention, as they enable the realization of next-generation bendable, implantable, and wearable electronic systems. Although the rechargeable lithium-ion battery (LIB) has been regarded as a strong candidate for a high-performance flexible energy source, compliant electrodes for bendable LIBs are restricted to only a few materials, and their performance has not been sufficient for them to be applied to flexible consumer electronics including r

Biomedical EngineeringEngineering
7
Article|399 citations·2015
A Hyper‐Stretchable Elastic‐Composite Energy Harvester
Chang Kyu Jeong, Jinhwan Lee, Seungyong Han, Jungho Ryu, Geon‐Tae Hwang, Dae Yong Park, Jung Hwan Park, Seung Seob Lee, Myunghwan Byun, Seung Hwan Ko, Keon Jae Lee
SJR Q1Advanced Materials

A hyper-stretchable and deformable elastic-composite generator is developed using a piezoelectric nanocomposite composed of (1−x){Pb(Mg1/3Nb2/3)O3}–x{PbTiO3} microparticles, carbon nanotubes, a silicone rubber matrix, and very long silver (Ag) nanowire percolation network electrodes. To date, this nanogenerator sets world records for output performance, strain capacity, mechanical stability, and commercial feasibility in the research field for stretchable and deformable piezoelectric energy harv

Biomedical EngineeringEngineering
8
Article|364 citations·2014
Topographically-Designed Triboelectric Nanogenerator via Block Copolymer Self-Assembly
Chang Kyu Jeong, Kwang Min Baek, Simiao Niu, Tae Won Nam, Yoon Hyung Hur, Dae Yong Park, Geon‐Tae Hwang, Myunghwan Byun, Zhong Lin Wang, Yeon Sik Jung, Keon Jae Lee
SJR Q1Nano Letters

Herein, we report a facile and robust route to nanoscale tunable triboelectric energy harvesters realized by the formation of highly functional and controllable nanostructures via block copolymer (BCP) self-assembly. Our strategy is based on the incorporation of various silica nanostructures derived from the self-assembly of BCPs to enhance the characteristics of triboelectric nanogenerators (TENGs) by modulating the contact-surface area and the frictional force. Our simulation data also confirm

Biomedical EngineeringEngineering
9
Review|329 citations·2019
Flexible Piezoelectric Acoustic Sensors and Machine Learning for Speech Processing
Young-Hoon Jung, Seong Kwang Hong, Hee Seung Wang, Jae Hyun Han, Trung X. Pham, Hyunsin Park, Junyeong Kim, Sunghun Kang, Chang D. Yoo, Keon Jae Lee
SJR Q1Advanced Materials

Flexible piezoelectric acoustic sensors have been developed to generate multiple sound signals with high sensitivity, shifting the paradigm of future voice technologies. Speech recognition based on advanced acoustic sensors and optimized machine learning software will play an innovative interface for artificial intelligence (AI) services. Collaboration and novel approaches between both smart sensors and speech algorithms should be attempted to realize a hyperconnected society, which can offer pe

Biomedical EngineeringEngineering
10
Review|319 citations·2014
Flexible Piezoelectric Thin‐Film Energy Harvesters and Nanosensors for Biomedical Applications
Geon‐Tae Hwang, Myunghwan Byun, Chang Kyu Jeong, Keon Jae Lee
SJR Q1Advanced Healthcare Materials

The use of inorganic-based flexible piezoelectric thin films for biomedical applications has been actively reported due to their advantages of highly piezoelectric, pliable, slim, lightweight, and biocompatible properties. The piezoelectric thin films on plastic substrates can convert ambient mechanical energy into electric signals, even responding to tiny movements on corrugated surfaces of internal organs and nanoscale biomechanical vibrations caused by acoustic waves. These inherent propertie

Biomedical EngineeringEngineering
11
Review|300 citations·2018
Laser Irradiation of Metal Oxide Films and Nanostructures: Applications and Advances
Haribabu Palneedi, Jung Hwan Park, Deepam Maurya, Mahesh Peddigari, Geon‐Tae Hwang, Venkateswarlu Annapureddy, Jong‐Woo Kim, Jong‐Jin Choi, Byung‐Dong Hahn, Shashank Priya, Keon Jae Lee, Jungho Ryu
SJR Q1Advanced MaterialsOA

Recent technological advances in developing a diverse range of lasers have opened new avenues in material processing. Laser processing of materials involves their exposure to rapid and localized energy, which creates conditions of electronic and thermodynamic nonequilibrium. The laser-induced heat can be localized in space and time, enabling excellent control over the manipulation of materials. Metal oxides are of significant interest for applications ranging from microelectronics to medicine. N

Biomedical EngineeringEngineering
12
Article|271 citations·2011
Flexible Memristive Memory Array on Plastic Substrates
Seungjun Kim, Hu Young Jeong, Sung Kyu Kim, Sung‐Yool Choi, Keon Jae Lee
SJR Q1Nano Letters

The demand for flexible electronic systems such as wearable computers, E-paper, and flexible displays has recently increased due to their advantages over present rigid electronic systems. Flexible memory is an essential part of electronic systems for data processing, storage, and communication and thus a key element to realize such flexible electronic systems. Although several emerging memory technologies, including resistive switching memory, have been proposed, the cell-to-cell interference is

Electrical and Electronic EngineeringEngineering
13
Article|255 citations·2014
Flexible Inorganic Piezoelectric Acoustic Nanosensors for Biomimetic Artificial Hair Cells
Hyun Soo Lee, Juyong Chung, Geon‐Tae Hwang, Chang Kyu Jeong, Youngdo Jung, Jun‐Hyuk Kwak, Hanmi Kang, Myunghwan Byun, Wan Doo Kim, Shin Hur, Seung Ha Oh, Keon Jae Lee
SJR Q1Advanced Functional Materials

For patients who suffer from sensorineural hearing loss by damaged or loss of hair cells in the cochlea, biomimetic artificial cochleas to remedy the dis­advantages of existing implant systems have been intensively studied. Here, a new concept of an inorganic‐based piezoelectric acoustic nanosensor (iPANS) for the purpose of a biomimetic artificial hair cell to mimic the functions of the original human hair cells is introduced. A trapezoidal silicone‐based membrane (SM) mimics the function of th

Sensory SystemsNeuroscience
14
Article|254 citations·2023
Clinical Validation of a Wearable Piezoelectric Blood‐Pressure Sensor for Continuous Health Monitoring
Seongwook Min, Dong Hyun Kim, Daniel J. Joe, Byung Woo Kim, Young-Hoon Jung, Jae Hee Lee, Bo‐Yeon Lee, Il Doh, Jaehun An, Young‐Nam Youn, Boyoung Joung, Chang D. Yoo
SJR Q1Advanced MaterialsOA

Abstract Wearable blood‐pressure sensors have recently attracted attention as healthcare devices for continuous non‐invasive arterial pressure (CNAP) monitoring. However, the accuracy of wearable blood‐pressure (BP) monitoring devices has been controversial due to the low signal quality of sensors, the absence of an accurate transfer function to convert the sensor signals into BP values, and the lack of clinical validation regarding measurement precision. Here, a wearable piezoelectric blood‐pre

Biomedical EngineeringEngineering
15
Article|254 citations·2016
Flash‐Induced Self‐Limited Plasmonic Welding of Silver Nanowire Network for Transparent Flexible Energy Harvester
Jung Hwan Park, Geon‐Tae Hwang, Shinho Kim, Jeong‐Min Seo, Hong‐Jin Park, Kyoungsik Yu, Taek‐Soo Kim, Keon Jae Lee
SJR Q1Advanced Materials

The outstanding performance (sheet resistance of 5 Ω sq<sup>-1</sup> at transmittance of 90%) and strongly adhesive (30.7 J m<sup>-2</sup> ) silver nanowires (AgNWs) are fabricated using flash-induced plasmonic welding (FPW) based on theoretical research of photothermal interactions. The FPW-processed AgNWs are utilized as electrodes of a transparent flexible energy harvester, and this device exhibits excellent transmittance and high electric output performance. The FPW methodology provides a hi

Electrical and Electronic EngineeringEngineering

Research Areas

Biomedical EngineeringElectrical and Electronic EngineeringMaterials ChemistryCellular and Molecular NeuroscienceCondensed Matter PhysicsMechanical Engineering

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