• 제목/요약/키워드: Gas adsorption efficiency

검색결과 125건 처리시간 0.026초

Hydrogen Absorption by Crystalline Semiconductors: Si(100), (110) and (111)

  • 정민복;조삼근
    • 한국진공학회:학술대회논문집
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    • 한국진공학회 2009년도 제38회 동계학술대회 초록집
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    • pp.383-383
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    • 2010
  • Gas-phase hydrogen atoms create a variety of chemical and physical phenomena on Si surfaces: adsorption, abstraction of pre-adsorbed H, Si etching, Si amorphization, and penetration into the bulk lattice. Thermal desorption/evolution analyses exhibited three distinct peaks, including one from the crystalline bulk. It was previously found that thermal-energy gaseous H(g) atoms penetrate into the Si(100) crystalline bulk within a narrow substrate temperature window(centered at ~460K) and remain trapped in the bulk lattice before evolving out at a temperature as high as ~900K. Developing and sustaining atomic-scale surface roughness, by H-induced silicon etching, is a prerequisite for H absorption and determines the $T_s$ windows. Issues on the H(g) absorption to be further clarified are: (1) the role of the detailed atomic surface structure, together with other experimental conditions, (2) the particular physical lattice sites occupied by, and (3) the chemical nature of, absorbed H(g) atoms. This work has investigated and compared the thermal H(g) atom absorptivity of Si(100), Si(111) and Si(110) samples in detail by using the temperature programmed desorption mass spectrometry (TPD-MS). Due to the differences in the atomic structures of, and in the facility of creating atom-scale etch pits on, Si(100), (100) and (110) surfaces, the H-absorption efficiency was found to be larger in the order of Si(100) > Si(111) > Si(110) with a relative ratio of 1 : 0.22 : 0.045. This intriguing result was interpreted in terms of the atomic-scale surface roughening and kinetic competition among H(g) adsorption, H(a)-by-H(g) abstraction, $SiH_3(a)$-by-H(g) etching, and H(g) penetraion into the crystalline silicon bulk.

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왕겨 활성 바이오차 혼합 비율에 따른 우분 호기소화 시 온실가스 발생 특성 (Characteristics of Greenhouse Gas Emissions with Different Combination Rates of Activated Rice Hull Biochar during Aerobic Digestion of Cow Manure)

  • 노연희;정우진;정석주;정인호;나홍식;김민수;신중두
    • 한국환경농학회지
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    • 제39권3호
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    • pp.222-227
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    • 2020
  • BACKGROUND: Among the biomass conversion techniques of livestock manure, composting process is a method of decomposing organic matter through microorganisms, and converting it into fertilizer in soil. The aerobic composting process is capable of treating cow manure in large quantities, and produces greenhouse gas as CO2 and N2O, although it has economical benefit. By using the activated rice hull biochar, which is a porous material, it was intended to mitigate the greenhouse gas emissions, and to produce the compost of which quality was high. Objective of this experiment was to estimate CO2 and N2O emissions through composting process of cow manure with different cooperated biochar contents. METHODS AND RESULTS: The treatments of activated rice hull biochar were set at 0%, 5%, 10% and 15%, respectively, during composting cow manure. The CO2 emission in the control was 534.7 L kg-1, but was 385.5 L kg-1 at 15% activated rice hull biochar. Reduction efficiency of CO2 emission was estimated to be 28%. N2O emission was 0.28 L kg-1 in the control, but was 0.03 L min-1 at 15% of activated rice hull biochar, estimating about 89% reduction efficiency. CONCLUSION: Greenhouse gas emissions during the composting process of cow manure can be reduced by mixing with 15% of activated rice hull biochar for eco-friendly compost production.

저온 열처리가 탄소 음극재의 물리·화학적 특성 및 이차전지 성능에 미치는 영향 (Effect of Low Temperature Heat Treatment on the Physical and Chemical Properties of Carbon Anode Materials and the Performance of Secondary Batteries)

  • 황태경;김지홍;임지선;강석창
    • 공업화학
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    • 제32권1호
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    • pp.83-90
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    • 2021
  • 본 연구에서는 저온 열처리 탄소의 물리·화학적 특성이 이차전지 음극재로서의 전기화학적 거동에 미치는 영향에 대하여 고찰하였다. 석유계 핏치의 코크스화를 위하여 600 ℃ 열처리를 수행하였으며 제조된 코크스는 700~1500 ℃로 탄화 온도를 달리하여 저온 열처리 탄소 음극재로 제조되었다. 탄소 음극재의 물리 화학적 특성은 N2 흡·탈착 등온선, X-ray diffraction (XRD), 라만 분광(Raman spectroscopy), 원소 분석 등을 통하여 확인하였으며,저온 열처리 탄소의 음극 특성은 반쪽 전지를 통한 용량, 초기 쿨롱 효율(ICE, initial Coulomb efficiency), 율속, 수명 등의 전기화학적 특성을 통하여 고찰하였다. 저온 열처리 탄소의 결정 구조는 1500 ℃ 이하에서 결정자의 크기와 진밀도가 증가하였으며 비표면적은 감소하였다. 저온 열처리 탄소의 물리화학적 특성 변화에 따라 음극재의 전기화학 특성이 변화하였는데 수명 특성은 H/C 원소 비, 초기 쿨롱 효율은 비표면적, 율속 특성은 진밀도의 특성에 기인하는 것으로 판단되었다.

Photocatalytic removal of NOx using TiO2-coated zeolite

  • Mendoza, Joseph Albert;Lee, Dong Hoon;Kang, Joo-Hyon
    • Environmental Engineering Research
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    • 제21권3호
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    • pp.291-296
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    • 2016
  • Application of photocatalytic nanoparticles has been recently gaining an increased attention as air purifying material for sustainable urban development. The present work reports the photocatalytic removal of gaseous phase nitrogen oxides ($NO_x$) using $TiO_2$-coated zeolite to be applied as a filter media for the urban green infrastructure such as raingardens. The $TiO_2$-coated zeolite was synthesized by simple wet chemistry method and tested in a continuous-flow photo-reactor for its removal efficiency of $NO_x$ under different conditions of the weight percentage of $TiO_2$ coated on the zeolite, and gas retention time. The removal efficiency of $NO_x$ in general increased as the weight percentage of $TiO_2$ coated on the zeolite increased up to 15-20%. Greater than 90% of $NO_x$ was removed at a retention time of one minute using the $TiO_2$-coated zeolite ($TiO_2$ weight percentage = 20%). Overall, $TiO_2$-coated zeolite showed greater efficiency of $NO_x$ removal compared to $TiO_2$ powder probably by providing additional reaction sites from the porous structure of zeolite. It was presumed that the degradation of $NO_x$ is attributed to both the physical adsorption and photocatalytic oxidation that could simultaneously occur at the catalyst surface.

Cu/MCM-41 메조포러스 촉매 제조 및 NO 제거 특성 (Preparation and Characterization of Cu/MCM-41 Mesoporous Catalysts for NO Removal)

  • 박수진;조미화;김석;권수한
    • 공업화학
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    • 제16권6호
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    • pp.737-741
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    • 2005
  • 본 연구에서는 제조한 MCM-41에 Cu의 함량에 따른 NO의 전환율을 고찰하였다. MCM-41은 실리카 원으로 colloid silica를 사용하였고, template로 cetyltrimethylammonium chloride (CTMACl)를 사용하여 수열 합성하였으며, Cu/MCM-41은 Cu(II) acetylacetonate를 사용해서 Cu의 농도를 5, 10, 20 그리고 40%로 변화시켜 제조하였다. 표면 특성은 pH, FT-IR로 분석하였고, 육방배열의 1차원 기공 구조는 XRD로 고찰하였다. $N_2/77K$ 등온흡착 특성은 BET식과 t-plot을 이용하여 확인하였으며, NO 제거 효율은 가스크로마토그래프를 이용하여 측정하였다. 실험 결과, Si-OH와 Si-O-Si의 stretching vibration peak가 관찰되었으며, (100), (110), (200) 그리고 (210)의 육방배열의 1차원 구조를 확인하였다. Cu 금속이 도입된 MCM-41은 Cu 도입량이 증가할수록 비표면적과 미세기공부피는 감소한 반면에 NO 제거 효율은 증가하였다. 결과적으로 Cu/MCM-41의 Cu의 함량이 증가함에 따라 전체 촉매작용 반응과 NO 제거율이 증가하였다.

도장공정 배기가스 내 VOC 처리를 위한 활성탄-광촉매 복합시스템 (Activated Carbon-Photocatalytic Hybrid System for the Treatment of the VOC in the Exhaust Gas from Painting Process)

  • 이찬;차상원;이태규
    • 에너지공학
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    • 제14권2호
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    • pp.133-139
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    • 2005
  • 도장공정에서 발생하는 VOC의 처리를 위한 활성탄-광촉매 복합시스템을 제안하였고, VOC제거성능을 실험적으로 평가하였다. 활성탄 합은 톨루엔 흡착특성에 근거하여 설계하였고, 광촉매 시스템은 $TiO_2/SiO_2$ 유동층 반응기와 $TiO_2$코팅된 필터의 연계시스템으로 설계하였다. 본 활성탄-광촉매 복합시스템은 서로 다른 VOC 화학종 및 농도에 따라 $75\~100\%$에 이르는 VOC제거효율을 보여주었다.

화학처리에 의한 천연 Zeolite의 Gas 분리 (Gas Separations of Natural Zeolite by Chemical Treatments)

  • 임굉
    • 자연과학논문집
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    • 제5권1호
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    • pp.67-75
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    • 1992
  • 결정성 aluminosilicate 광물의 일종인 천연 zeolite는 광물학적 특성과 화학적 표면활성으로 인하여 다방면의 공업화학적 이용가치가 매우 높고 광물중 특히 가장 높은 양이온교환능을 가지고 있어 기체분자에 대한 선택적 흡착력이 큰 molecular sieve로써 흡착분리제로는 물론, 건조제, 흡습제, 이온교환체, 촉매, 증량제 그리고 폐수처리제, 경수의 연화제등으로 이용도가 날로 증가하고 있다. 국내산 천연 zeolite를 IN HCL용액과 NaCl용액으로 화학처리하여 다공성을 증가시켜 column충전제로 사용한 결과, 혼합기체 Ar, $N_2$ CO및 $CH_4$의 분리특성에 관해서 HCL용액으로 처리한 mordenite 시료는 활성화온도가 $300^{\circ}C$일 경우, CO와 $CH_4$의 분리는 곤란하나 $350^{\circ}C$에서는 분리가 용이하였고 NaCl용액으로 처리한 시료는 미처리한 것과 거의 유사하였다. Ar과 $N_2$와의 분리에는 산 또는 알칼리로 화학처리한 시료에도 별로 효과가 없었으나 HCL용액과 NaCl용액을 연속적으로 처리한 천연 zeolite는 합성 zeolite의 특성에 견줄만한 정도로 기체분리효과와 HETP값을 보여주었다. 한편 시료의 화학처리에 의한 Ar과 CO의 흡착열의 변화는 극성기체인 CO의 경우, 별로 변화가 없지만 무극성기체인 Ar은 영향을 받기가 용이하였다. 또한 carrier gas He의 유속이 대략 20~30ml min범위일때 최소의 HETP값을 가지며 column의 효능이 좋았다.

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계면활성제 수용액에 의해 재생된 활성탄 촉매의 탈질 성능 ($DeNO_{x}$ Performance of Activated Carbon Catalysts Regenerated by Surfactant Solution)

  • 박혜민;박영권;전종기
    • Korean Chemical Engineering Research
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    • 제49권6호
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    • pp.739-744
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    • 2011
  • 선택적환원 반응용 활성탄 촉매는 액정디스플레이 제조 공정에서 배출되는 붕소를 포함하는 배가스 중의 $NO_x$를 제거하는데 사용되는데, 붕소가 촉매의 세공을 막거나 활성점에 침적되어 촉매 비활성화가 발생하게 된다. 폐촉매는 다양한 계면활성제를 포함하는 수용액 중에서의 세정, 건조 및 소성에 의해 재생이 가능하였다. 세정 과정의 조건, 계면 활성제 종류, 소성 조건 등을 변화시키면서 재생 전과 후의 폐촉매의 물리화학적 성능 비교를 위하여 질소 흡착 실험, ICP에 의한 원소 분석을 수행하였다. 암모니아를 사용하는 선택적환원 반응은 고정층 촉매 반응기를 사용하여 $120^{\circ}C$에서 수행하였다. $90^{\circ}C$의 수용액에서 비이온 계면활성제를 사용하여 세정하고, 질소 분위기에서 $550^{\circ}C$에서 소성하여 재생한 활성탄 촉매는 붕소가 가장 많이 제거되어 신규 활성탄과 유사한 수준의 표면적과 $NO_x$ 제거 효율을 회복하였다.

Influence of complex geological structure on horizontal well productivity of coalbed methane

  • Qin, Bing;Shi, Zhan-Shan;Sun, Wei-Ji;Liang, Bing;Hao, Jian-Feng
    • Geomechanics and Engineering
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    • 제29권2호
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    • pp.145-154
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    • 2022
  • Complex geological conditions have a great influence on the mining of coalbed methane (CBM), which affects the extraction efficiency of CBM. This investigation analyzed the complicated geological conditions in the Liujia CBM block of Fuxin. A geological model of heterogeneities CBM reservoirs was established to study the influence of strike direction of igneous rocks and fault structures on horizontal well layout. Subsequently, the dual-porosity and dual-permeability mathematical model was established, which considers the dynamic changes of porosity and permeability caused by gas adsorption, desorption, pressure change. The results show that the production curve is in good agreement with the actual by considering gas seepage in matrix pores in the model. Complicated geological structures affect the pressure expansion of horizontal wells, especially, the closer to the fault structure, the more significant the effect, the slower the pressure drop, and the smaller the desorption area. When the wellbore extends to the fault, the pressure expansion is blocked by the fault and the productivity is reduced. In the study area, the optimal distance to the fault is 70 m. When the horizontal wellbore is perpendicular to the direction of coal seam igneous rock, the productivity is higher than that of parallel igneous rock, and the horizontal well bore should be perpendicular to the cleat direction. However, the well length is limited due to the dense distribution of igneous rocks in the Liujia CBM block. Therefore, the horizontal well pumping in the study area should be arranged along the direction of igneous rock and parallel plane cleats. It is found that the larger the area surrounded by igneous rock, the more favorable the productivity. In summary, the reasonable layout of horizontal wells should make full use of the advantages of igneous rock, faults and other complex geological conditions to achieve the goal of high and stable production.

Synthesis of Ce-doped In2O3 nanoparticles via a microwave-assisted hydrothermal pathway and their application as an ultrafast breath acetone sensor

  • Byeong-Hun Yu;Sung Do Yun;Chan Woong Na;Ji-Wook Yoon
    • 한국표면공학회지
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    • 제56권6호
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    • pp.393-400
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    • 2023
  • Acetone, a metabolite detected from the exhaled breath of people doing a diet, can be used for non-invasive monitoring of diet efficiency. Thus, gas sensors with rapid response and recovery characteristics to acetone need to be developed. Herein, we report ultrafast acetone sensors using Ce-doped In2O3 nanoparticles prepared by the one-pot microwave-assisted hydrothermal method. The pure In2O3 sensor shows a high response and fast response time (τres = 6 s) upon exposure to 2 ppm acetone at 300 ℃, while exhibiting a relatively sluggish recovery speed (τrecov = 1129 s). When 20 wt% Ce is doped, the τrecov of the sensor significantly decreased to 45 s withholding the fast-responding characteristic (τres = 6 s). In addition, the acetone response (resistance ratio, S) of the sensor is as high as 5.8, sufficiently high to detect breath acetone. Moreover, the sensor shows similar acetone sensing characteristics even under a highly humid condition (relative humidity of 60%) in terms of τres (6 s), τrecov (47 s), and S (4.7), demonstrating its high potential in real applications. The excellent acetone sensing characteristics of Ce-doped In2O3 nanoparticles are discussed in terms of their size, composition, phase, and oxygen adsorption on the sensing surface.