Korea Advanced Institute of Science and Technology · Engineering
이 교수의 연구실은 나노소재 기반의 전기화학적 센서 및 에너지 장치 개발에 초점을 맞추고 있습니다. 특히 전기스핀닝 기반 나노섬유 기반 기판을 활용한 고감도 기체 센서, 수소 가스 센서, 그리고 자가작동 전기화학적 발전 장치 등에서 혁신적인 소재 설계와 구조 제어를 수행하고 있습니다. 또한 목재 구조를 모방한 두꺼운 전기화학적 전극을 통한 고에너지 밀도 슈퍼커퍼시터 개발도 진행 중이며, 지속 가능한 전자 의복(e-textiles)의 소재 및 제조 공정 개발을 통해 환경 친화적인 스마트 웨어러블 기술을 선도하고 있습니다.
Figures are computed from collected data and may differ slightly.
Nanostructured semiconducting metal oxides and particularly single nanowire devices offer exceptional gas sensitivity but at the expense of statistical variations and excessive noise levels. In this study TiO2/poly(vinyl acetate) composite nanofiber mats were directly electrospun onto interdigitated Pt electrode arrays, hot pressed at 120 degrees C, and calcined at 450 degrees C. This resulted in a novel multiple nanowire network composed of sheaths of 200-500 nm diameter cores filled with readi
Abstract This work presents a new route to suppress grain growth and tune the sensitivity and selectivity of nanocrystalline SnO 2 fibers. Unloaded and Pd‐loaded SnO 2 nanofiber mats are synthesized by electrospinning followed by hot‐pressing at 80 °C and calcination at 450 or 600 °C. The chemical composition and microstructure evolution as a function of Pd‐loading and calcination temperature are examined using EDS, XPS, XRD, SEM, and HRTEM. Highly porous fibrillar morphology with nanocrystallin
Hydrogen (H<sub>2</sub>) is one of the next-generation energy sources because it is abundant in nature and has a high combustion efficiency that produces environmentally benign products (H<sub>2</sub>O). However, H<sub>2</sub>/air mixtures are explosive at H<sub>2</sub> concentrations above 4%, thus any leakage of H<sub>2</sub> must be rapidly and reliably detected at much lower concentrations to ensure safety. Among the various types of H<sub>2</sub> sensors, chemiresistive sensors are one of t
The artificial hydrological cycle built by using deliquescent calcium chloride enables self-operation of a transpiration-driven electrokinetic power generator.
The emergence and development of thick electrodes provide an efficient way for the high-energy-density supercapacitor design. Wood is a kind of biomass material with porous hierarchical structure, which has the characteristics of a straight channel, uniform pore structure, good mechanical strength, and easy processing. The wood-inspired low-tortuosity and vertically aligned channel architecture are highly suitable for the construction of thick electrochemical supcapacitor electrodes with high en
Smart wearable electronic textiles (e-textiles) that can detect and differentiate multiple stimuli, while also collecting and storing the diverse array of data signals using highly innovative, multifunctional, and intelligent garments, are of great value for personalized healthcare applications. However, material performance and sustainability, complicated and difficult e-textile fabrication methods, and their limited end-of-life processability are major challenges to wide adoption of e-textiles
Wireless electronic devices require small, rechargeable batteries that can be rapidly designed and fabricated in customized form factors for shape conformable integration. Here, we demonstrate an integrated design and manufacturing method for aqueous zinc-ion batteries composed of polyaniline (PANI)-coated carbon fiber (PANI/CF) cathodes, laser micromachined zinc (Zn) anodes, and porous separators that are packaged within three-dimensional printed geometries, including rectangular, cylindrical,
Catalysis with single-atom catalysts (SACs) exhibits outstanding reactivity and selectivity. However, fabrication of supports for the single atoms with structural versatility remains a challenge to be overcome, for further steps toward catalytic activity augmentation. Here, we demonstrate an effective synthetic approach for a Pt SAC stabilized on a controllable one-dimensional (1D) metal oxide nano-heterostructure support, by trapping the single atoms at heterojunctions of a carbon nitride/SnO<s
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