김현우 교수
Hyoun Woo Kim
한양대학교 신소재공학부 · 공학
연구실 소개
김현우 교수의 연구실은 유연하고 내구성 있는 나노소재 기반의 고감도 기체 센서 개발에 주력하고 있습니다. 그래핀, MXene, SnO₂, ZnO 등의 나노복합체를 활용해 실온에서 높은 선택성과 민감도를 보이는 기체 감지 소자를 설계하고 있으며, 특히 유연성과 전도성의 조합을 통해 웨어러블 센서 응용을 실현하고자 합니다. 나노소재의 표면 구조 제어와 이종 접합(예: p-n, heterojunction)을 통한 전하 이동 메커니즘 최적화가 핵심 연구 전략입니다.
연구 현황
연구 성과 추이
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
주요 논문
15Graphene-based fibers (GFs) have aroused enormous interest in portable, wearable electronics because of their excellent mechanical flexibility, electrical conductivity, and weavability, which make them advantageous for wearable electronic devices. Herein, we report the development of metal binder-free Ti3C2Tx MXene/graphene hybrid fibers by a scalable wet-spinning process. These hybrid fibers exhibit excellent mechanical and electrical properties for applications in flexible wearable gas sensors
Sensing of benzene, toluene and xylene gases using resistive-based gas sensors.
Nitrogen (N)-doped graphene with different atomic percentages (2.3–4.7 at%) of N has been synthesized by thermal annealing of reduced graphene oxide (RGO) in ammonia gas for different times. The effects of annealing time on the structure, electrical and optical properties of N-doped graphene have been systematically investigated by using various analytical techniques. XPS, FTIR, Raman, and XRD studies show that there is a gradual structural change in N-doped graphene sheets with increasing annea
We obtained extremely high and selective sensitivity to NO 2 gas by fabricating graphene–SnO 2 nanocomposites using a commercial microwave oven. Structural characterization revealed that the products corresponded to agglomerated structures of graphene and SnO 2 particles, with small secondary SnO x ( x ≤ 2) nanoparticles deposited on the surfaces. The overall oxygen atomic ratio was decreased with the appearance of an SnO x ( x < 2) phase. By the microwave treatment of graphene–SnO 2 nanocomposi
SnO2-ZnO composite nanofibers fabricated using an electrospinning method exhibited exceptional hydrogen (H2) sensing behavior. The existence of tetragonal SnO2 and hexagonal ZnO nanograins was confirmed by an analysis of the crystalline phase of the composite nanofibers. A bifunctional sensing mechanism of the composite nanofibers was proposed in which the combined effects of SnO2-SnO2 homointerfaces and ZnO-SnO2 heterointerfaces contributed to an improvement in the H2 sensing characteristics. T
We propose a novel approach to improve the gas-sensing properties of n-type nanofibers (NFs) that involves creation of local p-n heterojunctions with p-type reduced graphene oxide (RGO) nanosheets (NSs). This work investigates the sensing behaviors of n-SnO2 NFs loaded with p-RGO NSs as a model system. n-SnO2 NFs demonstrated greatly improved gas-sensing performances when loaded with an optimized amount of p-RGO NSs. Loading an optimized amount of RGOs resulted in a 20-fold higher sensor respons
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