• Title/Summary/Keyword: Bio-based catalysts

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The Effect of Biodiesel and Ultra Low Sulfur Diesel Fuels on Emissions in 11,000 cc Heavy-Duty Diesel Engine

  • Baik, Doo-Sung;Han, Young-Chool
    • Journal of Mechanical Science and Technology
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    • 제19권3호
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    • pp.870-876
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    • 2005
  • It seems very difficult to comply with upcoming stringent emission standards in vehicles. To develop low emission engines, better quality of automotive fuels must be achieved. Since sulfur contents in diesel fuels are transformed to sulfate-laden particulate matters as a catalyst is applied, it is necessary to provide low sulfur fuels before any Pt-based oxidation catalysts are applied. In general, flash point, distillation $90\%$ and cetane index are improved but viscosity can be worse in the process of desulfurization of diesel fuel. Excessive reduction of sulfur may cause to degrade viscosity of fuels and engine performance in fuel injection systems. This research focused on the performance of an 11,000 cc diesel engine and emission characteristics by the introduction of ULSD, bio-diesel and a diesel oxidation catalyst, where the bio-diesel was used to improve viscosity of fuels in fuel injection systems as fuel additives or alternative fuels.

폐광산지역 토양 식생복원 과정 내 토양특성 및 미생물 군집 변화 분석 (Analysis of Soil Properties and Microbial Communities for Mine Soil Vegetation)

  • 박민정;윤민호;남인현
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제20권3호
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    • pp.83-91
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    • 2015
  • Mine soil contamination by high levels of metal ions that prevents the successful vegetation poses a serious problem. In the study presented here, we used the microbial biocatalyst of urease producing bacterium Sporosarcina pasteurii or plant extract based BioNeutro-GEM (BNG) agent. The ability of the biocatalysts to bioremediate contaminated soil from abandoned mine was examined by solid-state composting vegetation under field conditions. Treatment of mine soil with the 2 biocatalysts for 5 months resulted in pH increase and electric conductivity reduction compared to untreated control. Further analyses revealed that the microbial catalysts also promoted the root and shoot growth to the untreated control during the vegetation treatments. After the Sporosarcina pasteurii or plant extract based BNG treatment, the microbial community change was monitored by culture-independent pyrosequencing. These results demonstrate that the microbial biocatalysts could potentially be used in the soil bioremediation from mine-impacted area.

Ru-NiOx nanohybrids on TiO2 support prepared by impregnation-reduction method for efficient hydrogenation of lactose to lactitol

  • Mishra, Dinesh Kumar;Dabbawala, Aasif A.;Truong, Cong Chien;Alhassan, Saeed M.;Jegal, Jonggeon;Hwang, Jin Soo
    • Journal of Industrial and Engineering Chemistry
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    • 제68권
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    • pp.325-334
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    • 2018
  • Lactose is a reducing disaccharide consisting of two different monosaccharides such as galactose and glucose. The hydrogenation of lactose to lactitol is a formidable challenge because it is a complex process and several side products are formed. In this work, we synthesized Ru-Ni bimetallic nanohybrids as efficient catalysts for selective lactose hydrogenation to give selective lactitol. Ru-Ni bimetallic nanohybrids with $Ru-NiO_x$ (x = 1, 5, and 10 wt%) are prepared by impregnating Ru and Ni salts precursors with $TiO_2$ used as support material. Ru-Ni bimetallic nanohybrids (represented as $5Ru-5NiO/TiO_2$) catalyst is found to exhibit the remarkably high selectivity of lactitol (99.4%) and turnover frequency i.e. ($374h^{-1}$). In contrast, monometallic $Ru/TiO_2$ catalyst shows poor performance with ($TOF=251h^{-1}$). The detailed characterizations confirmed a strong interaction between Ru and NiO species, demonstrating a synergistic effect on the improvement on lactitol selectivity. The impregnation-reduction method for the preparation of bimetallic $Ru-NiO/TiO_2$ catalyst promoted Ru nanoparticles dispersed on NiO and intensified the interaction between Ru and NiO species. $Ru-NiO/TiO_2$ efficiently catalyzed the hydrogenation of lactose to lactitol with high yield/selectivity at almost complete conversion of lactose at $120^{\circ}C$ and 55 bar of hydrogen ($H_2$) pressure. Moreover, $Ru-NiO/TiO_2$ catalyst could also be easily recovered and reused up to four runs without notable change in original activity.

Molecular Orientation of Intercalants Stabilized in the Interlayer Space of Layered Ceramics: 1-D Electron Density Simulation

  • Yang, Jae-Hun;Pei, Yi-Rong;Piao, Huiyan;Vinu, Ajayan;Choy, Jin-Ho
    • 한국세라믹학회지
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    • 제53권4호
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    • pp.417-428
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    • 2016
  • In this review, an attempt is made to calculate one-dimensional (1-D) electron density profiles from experimentally determined (00l) XRD intensities and possible structural models as well in an effort to understand the collective intracrystalline structures of intercalant molecules of two-dimensional (2-D) nanohybrids with heterostructures. 2-D ceramics, including layered metal oxides and clays, have received much attention due to their potential applicability as catalysts, electrodes, stabilizing agents, and drug delivery systems. 2-D nanohybrids based on such layered ceramics with various heterostructures have been realized through intercalation reactions. In general, the physico-chemical properties of such 2-D nanohybrids are strongly correlated with their heterostructures, but it is not easy to solve the crystal structures due to their low crystallinity and high anisotropic nature. However, the powder X-ray diffraction (XRD) analysis method is thought to be the most powerful means of understanding the interlayer structures of intercalant molecules. If a proper number of well-developed (00l) XRD peaks are available for such 2-D nanohybrids, the 1-D electron density along the crystallographic c-axis can be calculated via a Fourier transform analysis to obtain structural information about the orientations and arrangements of guest species in the interlayer space.

생분해 촉매제를 이용한 산화생분해 바이오 필름 개발 (Development of Oxo-biodegradable Bio Film by Using Biodegradable Catalyst)

  • 이진규;정동석;유영선
    • 한국포장학회지
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    • 제22권3호
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    • pp.127-134
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    • 2016
  • 얇은 박막 형태로 제작된 기존의 바이오필름은 일반 필름과 비교하여 인장강도, 신장율 등의 물성이 감소되는 단점이 있어 실질적인 활용이 어려웠다. 본 연구에서는 바이오필름 초기 신장율 및 인장강도를 비롯한 물리적 성질 개선과 생분해 촉매제를 사용하여 생분해 기간을 단축시킬 수 있고 일반 고분자와 상용성이 뛰어나며 열, 빛, 수분, 효소 등에 의한 복합분해가 이루어지는 바이오필름을 개발하였다. 국가식품클러스터에서 ASTM D 882방법에 따라 생분해 촉매제 종류별로 선별된 생분해 촉매제 3종(알루미늄 이온염, 철 이온염, 니켈 이온염)이 각각 포함된 생분해 마스터배치(M/B)를 이용하여 HDPE와 LLDPE를 혼합해 바이오필름1-3을 제작하였다. 바이오필름1-3의 물성을 비교 평가하기 위하여 샘플링된 바이오필름과 대조구를 UV 노출법과 열처리하였다. 바이오필름과 대조구의 초기 물성은 유사한 수치를 나타냈다. 바이오필름1-3의 UV 노출 및 열처리 시험결과에 따라 판단하면 Al salt와 Fe salt가 포함된 바이오필름1,2의 인장강도 및 신장율의 감소율이 높은 것으로 확인되었다. 하지만 재료 원가와 산업적인 이용 가능성을 고려하였을 때 Fe salt가 포함된 바이오필름2를 선택하였으며 Fe salt 함량별 실험을 진행하였다. 추가적으로 농도별 효과를 알아보기 위하여 철 이온염의 농도를 0.5%, 1.0%, 1.5%, 2.0%의 함량으로 제조한 바이오필름 4-7과 대조구를 비교 평가하였다. 앞의 시험과 동일한 조건의 UV 처리를 하였으며 그 결과 0.5%에서 2.0%으로 철 이온염의 함량이 높아질수록 인장강도와 신장율이 모두 줄어들어 감소율이 높아졌다. 추가적인 바이오필름의 생분해도 측정 시험을 통해 생분해성 평가의 기준물질인 셀룰로오스에 대비하여 평균 생분해도는 39.2% 확인하고 UV처리를 통한 분자량 테스트 결과 대중적으로 사용되는 필름에 비해 분자량 감소가 훨씬 우수한 것으로 나타났다. 바이오필름4-7 모두 활용할 수 있지만 가격경쟁력과 생산성을 고려할 때 바이오필름5가 가장 우수한 것으로 판단되었다. 앞으로 Fe salt가 포함된 바이오필름은 기존의 필름 대비 우수한 물성을 가지고 생분해 촉매제를 통한 분해기간 단축과 같은 여러 특징을 포함하여 국내 포장 산업의 다양한 분야에 활용될 수 있을 것이다.

Hot-filament 플라즈마화학기상증착법 이용한 패턴된 DLC층 위에 탄소나노튜브의 선택적 배열

  • 최은창;박용섭;홍병유
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2010년도 제39회 하계학술대회 초록집
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    • pp.293-293
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    • 2010
  • Carbon nanotubes (CNTs) have attracted considerable attention as possible routes to device miniaturization due to their excellent mechanical, thermal, and electronic properties. These properties show great potential for devices such as field emission displays, CNT based transistors, and bio-sensors. The metals such as nickel, cobalt, gold, iron, platinum, and palladium are used as the catalysts for the CNT growth. In this study, diamond-like carbon (DLC) was used for CNT growth as a nonmetallic catalyst layer. DLC films were deposited by a radio frequency (RF) plasma-enhanced chemical vapor deposition (RF-PECVD) method with a mixture of methane and hydrogen gases. CNTs were synthesized by a hot filament plasma-enhanced chemical vapor deposition (HF-PECVD) method with ammonia (NH3) as a pretreatment gas and acetylene (C2H2) as a carbon source gas. The grown CNTs and the pretreated DLC filmswere observed using field emission scanning electron microscopy (FE-SEM) measurement, and the structure of the grown CNTs was analyzed by high resolution transmission scanning electron microscopy (HR-TEM). Also, using energy dispersive spectroscopy (EDS) measurement, we confirmed that only the carbon component remained on the substrate.

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황산을 이용한 열대작물 오일의 전처리 반응 최적화 및 바이오디젤 생산 (Optimization of Pre-treatment of Tropical Crop Oil by Sulfuric Acid and Bio-diesel Production)

  • 김덕근;최종두;박지연;이진석;박승빈;박순철
    • Korean Chemical Engineering Research
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    • 제47권6호
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    • pp.762-767
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    • 2009
  • 해외 열대작물 씨앗에서 추출한 식물성 오일을 이용하여 바이오디젤을 생산하고 물성분석을 통해 차량연료로서의 사용가능성을 검토하는 연구를 수행하였다. 유리지방산 함량이 높은 열대작물 오일의 효율적인 바이오디젤 생산을 위해서는 유리지방산을 산촉매로 에스테르화한 후 전이에스테르화 반응하는 2단계 반응공정의 적용이 필요하였다. 전처리(에스테르화) 반응에 적합한 촉매를 선정하기 위해 3가지 산 촉매의 비교실험 수행 결과 황산이 최적 촉매임을 확인하였고, 반응표면분석법(response surface method, RSM)에 의해 도출한 최적 반응조건은 황산 촉매 0.982%와 메탄올 26.7%로 나타났다. 전이에스테르화 반응에 대한 최적화 실험을 반응표면분석법에 근거하여 수행하고, 결과로 KOH 촉매 1.24%, 메탄올 22.76%로 확인되었지만 본 연구팀의 선행 실험의 반응조건(KOH 0.8%)보다 과량의 촉매가 투입된 것으로 나타났다. 이에 대한 확인실험으로 메탄올과 촉매 투입량에 대한 추가 실험을 수행하였으며, 그 결과로서 최적 반응조건으로 KOH 촉매 0.8%와 메탄올:오일 몰비 6.2:1로 도출하였으며 반응생성물의 분석결과 지방산 메틸에스테르(fatty acid methyl ester, FAME) 100.8%, 산가 0.45 mgKOH/g, 수분 0.00%, 산화안정성 0.70 h, 총 글리세롤 함량 0.04%, Mono-glyceride 함량 0.04%, Di-glyceride 함량 0.01%, Tri-glyceride 함량 0.00%, 동점도($40^{\circ}C$에서) $4.041mm^2/s$, 저온필터막힘점 $1.0^{\circ}C$로 주요 바이오디젤 품질규격을 만족하는 것으로 나타났다.

Morphology Control of Nanostructured Graphene on Dielectric Nanowires

  • 김병성;이종운;손기석;최민수;이동진;허근;남인철;황성우;황동목
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2012년도 제43회 하계 정기 학술대회 초록집
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    • pp.375-375
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    • 2012
  • Graphene is a sp2-hybridized carbon sheet with an atomic-level thickness and a wide range of graphene applications has been intensely investigated due to its unique electrical, optical, and mechanical properties. In particular, hybrid graphene structures combined with various nanomaterials have been studied in energy- and sensor-based applications due to the high conductivity, large surface area and enhanced reactivity of the nanostructures. Conventional metal-catalytic growth method, however, makes useful applications difficult since a transfer process, used to separate graphene from the metal substrate, should be required. Recently several papers have been published on direct graphene growth on the two dimensional planar substrates, but it is necessary to explore a direct growth of hierarchical nanostructures for the future graphene applications. In this study, uniform graphene layers were successfully synthesized on highly dense dielectric nanowires (NWs) without any external catalysts. We also demonstrated that the graphene morphology on NWs can be controlled by the growth parameters, such as temperature or partial pressure in chemical vapor deposition (CVD) system. This direct growth method can be readily applied to the fabrication of nanoscale graphene electrode with designed structures because a wide range of nanostructured template is available. In addition, we believe that the direct growth growth approach and morphological control of graphene are promising for the advanced graphene applications such as super capacitors or bio-sensors.

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