Ulsan National Institute of Science and Technology · Materials Science
Kwangjin An 교수의 연구실은 나노구조 산화물과 금속 나노입자를 활용한 고성능 촉매 시스템의 설계 및 기초 메커니즘 규명을 핵심으로 합니다. 특히, 나노입자의 크기, 형태, 핵심 구성 요소 및 지지체 표면 구조를 정밀하게 제어함으로써 CO 산화, 이소머리제이션 등 중요한 화학 반응에서의 촉매 성능을 극대화하는 데 초점을 맞추고 있습니다. 다양한 촉매 시스템의 상호작용 메커니즘을 실험과 이론적 분석을 융합하여 규명하는 다학제적 접근 방식을 펼치고 있습니다.
Figures are computed from collected data and may differ slightly.
Abstract A nanoparticle with well‐defined surfaces, prepared through colloidal chemistry, enables it to be studied as a model heterogeneous catalyst. The colloidal synthetic approach provides versatile tools to control the size and shape of nanoparticles. Traditional nucleation and growth mechanisms have been utilized to understand how nanoparticles can be uniformly synthesized and unprecedented shapes can be controlled. Now, the size of metal particles can be controlled to cluster regimes by us
The interaction of the metal and support in oxide-supported transition-metal catalysts has been proven to have extremely favorable effects on catalytic performance. Herein, mesoporous Co3O4, NiO, MnO2, Fe2O3, and CeO2 were synthesized and utilized in CO oxidation reactions to compare the catalytic activities before and after loading of 2.5 nm Pt nanoparticles. Turnover frequencies (TOFs) of pure mesoporous oxides were 0.0002–0.015 s–1, while mesoporous silica was catalytically inactive in CO oxi
Gold nanoparticles (NPs) have attracted attention due to their superior catalytic performance in CO oxidation at low temperatures. Along with the size and shape of Au NPs, the catalytic function of Au-catalyzed CO oxidation can be further optimized by controlling the physicochemical properties of oxide-supporting materials. We applied a combinatorial approach of experimental analyses and theoretical interpretations to study the effect of a surface structure of supporting oxides and the correspon
We synthesized various hollow oxide nanoparticles from as-prepared MnO and iron oxide nanocrystals. Heating metal oxide nanocrystals dispersed in technical grade trioctylphosphine oxide (TOPO) at 300 degrees C for hours yielded hollow nanoparticles retaining the size and shape uniformity of the original nanocrystals. The method was highly reproducible and could be generalized to synthesize hollow oxide nanoparticles of various sizes, shapes, and compositions. Control experiments revealed that th
We synthesized uniformly sized, pencil-shaped CoO nanorods by the thermal decomposition of a cobalt-oleate complex, which was prepared from the reaction of cobalt chloride and sodium oleate. The diameters and lengths of the CoO nanorods were easily controlled by varying the experimental conditions, such as the heating rate and the amount of Co-oleate complex. The X-ray diffraction pattern revealed that the CoO nanorods have an extraordinary wurtzite ZnO crystal structure. These uniformly sized n
Selective isomerization toward branched hydrocarbons is an important catalytic process in oil refining to obtain high-octane gasoline with minimal content of aromatic compounds. Colloidal Pt nanoparticles with controlled sizes of 1.7, 2.7, and 5.5 nm were deposited onto ordered macroporous oxides of SiO2, Al2O3, TiO2, Nb2O5, Ta2O5, and ZrO2 to investigate Pt size- and support-dependent catalytic selectivity in n-hexane isomerization. Among the macroporous oxides, Nb2O5 and Ta2O5 exhibited the hi
Abstract We synthesized manganese oxide (MnO and Mn 3 O 4 ) nanocrystals with various sizes and shapes by the thermal reaction of a Mn II –oleate complex through a “heat‐up process”. When a Mn II –oleate complex was thermally decomposed in non‐coordinating hydrocarbon solvents, uniformly sized MnO nanocrystals with cubic and octahedral shapes were produced. We were able to synthesize anisotropic, multibranched MnO nanocrystals by the oriented attachment of MnO truncated‐nanocube building blocks.
Designing catalysts with high thermal stability and resistance to deactivation while simultaneously maintaining their catalytic activity and selectivity is of key importance in high-temperature reforming reactions. We prepared Pt nanoparticle catalysts supported on either mesoporous SiO2 or TiO2. Sandwich-type Pt core@shell catalysts (SiO2@Pt@SiO2 and SiO2@Pt@TiO2) were also synthesized from Pt nanoparticles deposited on SiO2 spheres, which were encapsulated by either mesoporous SiO2 or TiO2 she
A NiMgGa-layered double hydroxide (NMG-LDH) is synthesized as an efficient catalyst precursor for dry reforming of methane (DRM). NMG-LDH is converted to an intermetallic Ni3Ga/MgO catalyst upon reduction. Compared to a monometallic Ni/MgO catalyst prepared from NiMg-LDH, the Ni3Ga/MgO catalyst exhibits high CH4 (similar to 48%) and CO2 (similar to 52%) conversions as well as excellent stability against coking during DRM. The reversible phase transition between intermetallic Ni3Ga and Ni3GaCx is
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