Hanyang University · Engineering
김현우 교수의 연구실은 주로 산화물 기반 나노소재를 활용한 고감도 기술 센서 개발에 집중하고 있습니다. 특히 일차원 구조를 가진 산화물 나노와이어 및 나노로드를 합성하여 기체 감지 성능을 극대화하는 데 초점을 맞추고 있으며, 저온에서 작동하는 기초광변색(WO₃ 등) 센서와 저항형 금속 산화물 기반 센서의 원리 및 응용을 연구하고 있습니다. 다양한 합성 방법(예: MOCVD, 열산화법)을 통해 나노소재의 구조와 화학 조성을 정밀 제어함으로써 실용적이고 안정적인 센서 시스템을 구현하고자 합니다.
Figures are computed from collected data and may differ slightly.
Gas sensors are indispensable for detecting harmful gases in the environment. The morphology of a gas sensor significantly affects its sensing performance. Among the various morphologies, one-dimensional nanowires (NWs) have numerous advantages, such as high surface area, small dimensions, high charge-carrier concentrations, facile synthesis, high crystallinity, and stability. These excellent properties make NWs promising for gas sensing. Resistive-type metal oxide-based gas sensors are widely u
Hydrogen is one of the most important gases that can potentially replace fossil fuels in the future. Nevertheless, it is highly explosive, and its leakage should be detected by reliable gas sensors for safe operation during storage and usage. Most hydrogen gas sensors operate at high temperatures, which introduces the risk of hydrogen explosion. Gasochromic WO3 sensors work based on changes in their optical properties and color variation when exposed to hydrogen gas. They can work at low or room
Abstract The current work reports the fabrication of crystalline Bi 2 O 3 nanorods on Pt‐coated Si substrates using trimethylbismuth and O 2 as the bismuth and the oxygen sources, respectively, in the metalorganic chemical vapor deposition process. Their microstructures were characterized by scanning electron microscopy, X‐ray diffraction, and transmission electron microscopy. The obtained nanorods were crystalline, with their diameters in the range of 20–200 nm. The absence of tip‐nanoparticle
Correction for ‘Bimetal-decorated resistive gas sensors: a review’ by Ka Yoon Shin et al. , J. Mater. Chem. C , 2025, https://doi.org/10.1039/D5TC00145E.
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