Hanyang University · Engineering
오제훈 교수의 연구실은 유기-세라믹 복합재료, 전기적 및 기계적 특성이 뛰어난 나노소재를 기반으로 한 스마트 센서 및 에너지 수확 장치의 개발에 중점을 두고 있습니다. 특히, 유리/에폭시 복합재의 정합 공정 최적화, 고감도 압력 센서, 삼투전기 나노발전기기(TENG) 및 펜으로 그린 전기화학적 발전기 등 에너지 수확 및 감지 기술에 응용 가능한 신소재와 구조 설계를 연구하고 있습니다. 이는 웨어러블 기기 및 생체적용 분야에서의 실용화를 목표로 하고 있습니다.
Figures are computed from collected data and may differ slightly.
Duringthe curingprocess of thick glass/epoxy composite laminates, substantial amounts of temperature lagand overshoot at the center of the laminates is usually experienced due to the large thickness and low thermal conductivity of the glass/epoxy composites, which require a long time for full and uniform consolidation. In this work, the temperature profiles of a 20mm thick unidirectional glass/epoxy laminate duringan autoclave vacuum bag process were measured and compared with the numerically ca
This study aims to improve the sensitivity of sensors using porous structures and cone-shaped patterns in the composition of a capacitive pressure sensor. A simple and rapid fabrication method for the production of porous structures and cone-shaped patterns using microwave irradiation of emulsions containing polydimethylsiloxane (PDMS) and a sacrificial solvent is introduced in this study. Through this method, a porous PDMS dielectric layer could be simply fabricated within a few minutes. The se
An electrospun nanofiber membrane significantly improves the electrical performances of triboelectric nanogenerators (TENGs) due to its high surface area. In recent years, composite nanofibers were applied to a TENG using various electrospinning system types to further enhance the performance of TENGs; however, the effects of the systems on the energy harvesting capability of TENGs have not been investigated thoroughly. This study aims to fabricate polyimide/poly(vinylidene fluoride-<i>co</i>-tr
Simple solution coating process allows large enhancement in electrical performance of pencil-on-paper triboelectric nanogenerators.
The development of pressure sensors with high sensitivity and effectiveness that exhibit linearity over a wide pressure range is crucial for wearable devices. In this study, we fabricated a novel ionic liquid (IL)/polymer composite with a convex and randomly wrinkled microstructure in a cost-effective and facile manner using an opaque glass and stretched polydimethylsiloxane template. The fabricated IL/polymer composite was used as the dielectric layer in a capacitive pressure sensor. The sensor
Abstract We investigated the effects of surface wettability, substrate temperature, and overprinting on the shapes and morphologies of dried and sintered inkjet‐printed dots of nanosilver suspensions. The surface wettability was modified by two different plasma surface treatments: C 4 F 8 plasma treatment for hydrophobic surface and O 2 plasma treatment for hydrophilic surface. The substrate temperature was varied from 25 to 85 °C with an interval of 20 °C. In order to change the dot thickness,
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