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. Stretchable Organic Light-Emitting Diodes (OLEDs)

Our laboratory develops mechanically deformable organic light-emitting diodes (OLEDs) for next-generation wearable displays and biomedical devices.
Conventional OLEDs are vulnerable to dynamic mechanical deformation, such as repeated stretching, bending, and folding, which can lead to performance degradation and device failure. To overcome these limitations, we design intrinsically stretchable materials, device architectures, and fabrication processes that enable OLEDs to maintain stable operation under mechanical deformation.
In particular, we develop stretchable emissive layers, charge-transport layers, and electrodes based on polymers and nanomaterials, aiming to achieve both high optoelectronic performance and mechanical durability. Our group reported the first intrinsically stretchable OLEDs (is-OLEDs) in which all constituent layers are stretchable. Our is-OLEDs have achieved the highest level of mechanical stability under repeated stretching reported to date, positioning our group at the forefront of research in the field of is-OLEDs.
2. Flexible/Stretchable Battery

Our laboratory focuses on researching next-generation stretchable batteries capable of providing a stable power supply to wearable electronics, utilizing fabrication technologies for stretchable electrodes, polymer electrolytes, and hydrogels.
To ensure a reliable power supply even in wearable environments subject to repeated deformation from human movement, we fabricate batteries by designing stretchable electrodes and integrating polymer- and hydrogel-based electrolytes with enhanced ionic conductivity and interfacial adhesion. Through the development of skin-attachable battery devices, we aim to implement a highly flexible and wearable energy storage system. To this end, we conduct research on improving the stretchability and electrochemical stability of core components—such as electrodes, electrolytes, and current collectors—as well as developing integrated battery-sensor systems to power wearable devices.








