Bong Kyun Kang
성균관대학교 Materials Science · 재료과학
강봉균 교수의 연구실은 비백금계 전이금속 질화물 및 나노구조 복합체를 중심으로 고효율 산소발생반응(OER) 촉매를 개발하고 있습니다. 특히, 3차원 다공성 구조, 2차원 나노하이브리드, 다층 구조의 껍질형 나노소재를 활용한 전기화학적 촉매 설계에 초점을 맞추고 있으며, 수소 생산을 위한 태양광-전기화학적 통합 시스템의 효율 향상을 목표로 하고 있습니다. 연구는 비용 효율성과 지속 가능성까지 고려한 비금속 촉매 및 비백금계 전기촉매 기반의 수소 생산 기술 개발을 포함합니다.
표시된 성과는 수집된 데이터 기준으로 산출되며, 일부 차이가 있을 수 있습니다.
The suitable materials, metal nitrides, are a promising class of electrocatalyst materials for a highly efficient oxygen evolution reaction (OER) because they exhibit superior intrinsic conductivity and have higher sustainability than oxide-based materials. To our knowledge, for the first time, we report a designable synthesis of three-dimensional (3D) and mesoporous Co3N@amorphous N-doped carbon (AN-C) nanocubes (NCs) with well-controlled open-framework structures via monodispersed Co3[Co(CN)6]
The mesoporous NiO/NiFe<sub>2</sub>O<sub>4</sub>multi-composite hollow nanocage electrodes are fabricated and achieve a low overpotential (303 mV at 10 mV cm<sup>−2</sup>) and Tafel plot (58.5 mV dec<sup>−1</sup>), respectively, and excellent cycling stability (12 h) as an anode material for oxygen evolution reaction, holding great promise for water splitting.
Ni 3 FeN and a N-doped carbon shell have improved electrical conductivity with the electronic structure modified through the extra electrons of nitrogen. Ni 3 FeN@NC in the water splitting reaction provide excellent electrochemical catalytic properties.
We report successfully synthesizing two-dimensional (2D) and nanocrystalline (NC) Fe2Ni2N/rGO nanohybrid sheets (NHSs) via ammonolysis of as-prepared 2D Ni2.25Fe0.75[Fe(CN)6]2/rGO precursors. We compared the electrochemical properties of the 2D-NC Fe2Ni2N/rGO NHSs as non-precious-metal nitride and graphene nanohybrid electrocatalysts for an oxygen evolution reaction (OER) with those of NiFe-based composition. The overpotential and Tafel plot of the 2D-NC Fe2Ni2N/rGO NHSs had their lowest values
A nanodome structured BiVO 4 /GaO x N 1− x (BVO/GaON) bilayer photoanode that is prepared by a facile solution method, and that exhibits an improved photoelectrochemical water‐oxidation performance is reported. GaON porous nanospheres with an average size of ≈300 nm are first synthesized by a nitridation (NH 3 flow, 800 °C) of Ga 4 (OH) 10 SO 4 nanospheres. The GaON nanospheres are coated by a slurry coating method, and then the BVO layer is uniformly deposited by a sol–gel spin‐coating method t
Water electrolyzers powered by renewable energy are emerging as clean and sustainable technology for producing hydrogen without carbon emissions. Specifically, anion exchange membrane (AEM) electrolyzers utilizing non-platinum group metal (non-PGM) catalysts have garnered attention as a cost-effective method for hydrogen production, especially when integrated with solar cells. Nonetheless, the progress of such integrated systems is hindered by inadequate water electrolysis efficiency, primarily
To our best knowledge, monodispersed β-Ga2O3 nanospheres were successfully synthesized for first time via morphology-controlled gallium precursors using the forced hydrolysis method, followed by thermal calcination processes. The morphology and particle sizes of the gallium precursors were strongly dependent on the varying (R = SO4(2-)/NO3(-)) concentration ratios. As R decreased, the size of the prepared gallium precursors decreased and morphology was altered from sphere to rod. The synthesized