40.
Hybrid-Structured Indium Tin Oxide with Ag Nanoparticles as Crystalline Seeds for Transparent Electrode with Enhanced Flexibility and Its Application to Organic Light Emitting Diodes
Japanese Journal of Applied Physics, May 2014, Volume 53, Issue 5S1, 05FB13
Ross E. Triambulo, Hahn-Gil Cheong, Huanyu Zhou, Gun-Hwan Lee and Jin-Woo Park
39.
The effect of the size and volume fraction of Zr2Cu on the sintering behavior of tungsten matrix composites during liquid-reactive sintering
International Jounal of Refractory Metals and Hard Materials, March 2014, Volume 43, p.157-163
Jin-Woo Park, Ji-Yeon Suh, Seung-Won Kang, Se-Eun Shin, Dong-Hyun Bae
32.
The effect of alloy compositions on the microstructure and the mechanical strength of oxide scales on four selected steels
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, Volume 556, October 2012, 246–252
Chan-Woo Yang, Seung-Mok Cho, Youn-Hee Kang , Jong-Sub Lee, Jin-Woo Park
40.
Hybrid-Structured Indium Tin Oxide with Ag Nanoparticles as Crystalline Seeds for Transparent Electrode with Enhanced Flexibility and Its Application to Organic Light Emitting Diodes
Japanese Journal of Applied Physics, May 2014, Volume 53, Issue 5S1, 05FB13
Ross E. Triambulo, Hahn-Gil Cheong, Huanyu Zhou, Gun-Hwan Lee and Jin-Woo Park
39.
The effect of the size and volume fraction of Zr2Cu on the sintering behavior of tungsten matrix composites during liquid-reactive sintering
International Jounal of Refractory Metals and Hard Materials, March 2014, Volume 43, p.157-163
Jin-Woo Park, Ji-Yeon Suh, Seung-Won Kang, Se-Eun Shin, Dong-Hyun Bae
32.
The effect of alloy compositions on the microstructure and the mechanical strength of oxide scales on four selected steels
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, Volume 556, October 2012, 246–252
Chan-Woo Yang, Seung-Mok Cho, Youn-Hee Kang , Jong-Sub Lee, Jin-Woo Park
1. Self-Powered Sensors & Stimulators for Closed-loop System

Our laboratory researches skin-inspired, multifunctional tactile sensors that simultaneously detect dynamic pressure, static pressure, and temperature within a single sensing unit and integrates them into advanced closed-loop stimulus-replicating systems.
We achieve this multi-sensory capability by integrating triboelectric and ionic mechanisms, allowing the sensor to generate distinct voltage profiles without cross-interference.
Furthermore we successfully implemented a closed-loop system that translates these real-world signals into live biomimetic sensations via wearable electro-thermal stimulators. By achieving high-fidelity haptic replication without complex arrays or external power, this framework provides a compact and energy-efficient solution for next-generation smart prosthetics, tele-haptics, and adaptive robotics.
2. Self-Powered Sensors

Our laboratory researches self-powered sensors that convert biosignals generated within the body and stimuli acting to the body into electrical signals without relying on external power sources.
By utilizing mechanisms such as piezoelectricity, triboelectricity, we convert various stimuli-including pressure, motion, sound-into electrical signals. Through this, we develop sensor platforms capable of monitoring the user's physical condition or assisting impaired bodily functions.
Because these self-powered sensors can actively detect changes in the body and the surrounding environment without a separate power supply, they contribute to the realization of wearable healthcare and bioelectronic systems that can be used for extended periods.
3. High performance mechanical energy harvester

Our laboratory conducts research on converting abundant energy sources from both the body and the surrounding environment into electricity to realize self-sustainable wearable systems.
We aim to harvest mechanical energy generated from activities such as walking and body movements, as well as vibrations and pressure from various surrounding facilities, and to use the harvested energy to power diverse wearable devices.
To extend the scope of wearable energy systems beyond mechanical energy harvesting, our laboratory is pursuing collaborations with researchers specializing in other energy sources, such as thermal and light energy. Through these interdisciplinary collaborations, we ultimately aim to realize wearable systems capable of long-term operation without frequent recharging.







