• 제목/요약/키워드: penetration energy barrier

검색결과 16건 처리시간 0.022초

팔라듐 얇은 막의 수소 투과에 대한 제일 원리 계산 (Ab-initio Study of Hydrogen Permeation though Palladium Membrane)

  • 차필령;김진유;석현광;김유찬
    • 대한금속재료학회지
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    • 제46권5호
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    • pp.296-303
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    • 2008
  • Hydrogen permeation through dense palladium-based membranes has attracted the attention of many scientists largely due to their unmatched potential as hydrogen-selective membranes for membrane reactor applications. Although it is well known that the permeation mechanism of hydrogen through Pd involves various processes such as dissociative adsorption, transitions to and from the bulk Pd, diffusion within Pd, and recombinative desorption, it is still unclear which process mainly limits hydrogen permeation at a given temperature and hydrogen partial pressure. In this study, we report an all-electron density-functional theory study of hydrogen permeation through Pd membrane (using VASP code). Especially, we focus on the variation of the energy barrier of the penetration process from the surface to the bulk with hydrogen coverage, which means the large reduction of the fracture stress in the brittle crack propagation considering Griffith's criterion. It is also found that the penetration energy barrier from the surface to the bulk largely decreases so that it almost vanishes at the coverage 1.25, which means that the penetration process cannot be the rate determining process.

Impact of Energy Relaxation of Channel Electrons on Drain-Induced Barrier Lowering in Nano-Scale Si-Based MOSFETs

  • Mao, Ling-Feng
    • ETRI Journal
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    • 제39권2호
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    • pp.284-291
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    • 2017
  • Drain-induced barrier lowering (DIBL) is one of the main parameters employed to indicate the short-channel effect for nano metal-oxide semiconductor field-effect transistors (MOSFETs). We propose a new physical model of the DIBL effect under two-dimensional approximations based on the energy-conservation equation for channel electrons in FETs, which is different from the former field-penetration model. The DIBL is caused by lowering of the effective potential barrier height seen by the channel electrons because a lateral channel electric field results in an increase in the average kinetic energy of the channel electrons. The channel length, temperature, and doping concentration-dependent DIBL effects predicted by the proposed physical model agree well with the experimental data and simulation results reported in Nature and other journals.

A study on nanoparticle filtration characteristics of multilayer meltblown depth filters

  • Lee, Kang-San;Hasolli, Naim;Jeon, Seong-Min;Lee, Jae-Rang;Kim, Kwang-Deuk;Park, Young-Ok;Hwang, Jungho
    • 한국입자에어로졸학회지
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    • 제12권3호
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    • pp.51-56
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    • 2016
  • Due to recent development in nanotechnology and increasing usage and production of nanomaterials, numerous studies related to environment, sanitation and safety handling of nanoparticle are being conducted. Since nanoparticles can be easily absorbed into human bodies through breathing process, based on their toxic substances and their large specific surface, these particles can cause serious health damage. Therefore, to reduce nanoparticle emissions, nanofiltration technology is becoming a serious issue. Filtration is a separation process during which a fluid passes through a barrier by removing the particles from the stream. Barrier filters can be made of various materials and shapes. One of the most common type of barrier filter is the fibrous filter. Fibrous filters are divided in two types: nonwoven and woven fabrics. Polypropylene is a thermoplastic material, used as a base material for melt blown nonwoven fabric. In this study, we examined filtration property of KCl nanoparticles with a mean particle diameter of 75 nm using multilayer meltblown filter samples. These experiments verify that the penetration of nanoparticle in the filter correlate with pressure drop; the meltblown layer MB1 has the greatest effect on dust collection efficiency of the filter. Among all tested samples, dust collection efficiency of 2-layer filter was best. However, when considering the overall pressure drop and dust collection efficiency, the 4-layer filter has the highest quality factor for particles smaller than 70 nm.

Investigation of the various properties of several candidate additives as buffer materials

  • Gi-Jun Lee;Seok Yoon;Taehyun Kim;Seeun Chang
    • Nuclear Engineering and Technology
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    • 제55권3호
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    • pp.1191-1198
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    • 2023
  • Bentonite buffer material is a critical component in an engineered barrier system (EBS) for disposing high-level radioactive waste (HLW). The bentonite buffer material protects the disposal canister from groundwater penetration and releases decay heat to the surrounding rock mass; thus, it should possess high thermal conductivity, low hydraulic conductivity, and moderate swelling pressure to safely dispose the HLWs. Bentonite clay is a suitable buffer material because it satisfies the safety criteria. Several additives have been suggested as mixtures with bentonite to increase the thermal-hydraulic-mechanical-chemical (THMC) properties of bentonite buffer materials. Therefore, this study investigated the geotechnical, mineralogical, and THMC properties of several candidate additives such as sand, graphite, granite, and SiC powders. Datasets obtained in this study can be used to select adequate additives to improve the THMC properties of the buffer material.

ZnO/n-Si 저가 박막태양전지의 특성연구 (A Study on Characteristics of ZnO/n-Si Low Cost Solar Cells)

  • 백두고;조성민
    • 태양에너지
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    • 제19권1호
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    • pp.29-36
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    • 1999
  • ZnO/n-Si junctions were fabricated by spin coating with ZnO precursor produced by the sol-gel process. In order to increase the electrical conductivity of ZnO films, the films were n-doped with Al impurity and subsequently annealed at about $450^{\circ}C$ under reducing environments. The ohmic contacts between n-Si and AI for a bottom electrode were successfully fabricated by doping the rear surface of Si substrate with phosphorous atoms. The front surface of the substrate was also doped with phosphorous atoms for improving the efficiency of the solar cells. Consequently, conversion efficiencies ranging up to about 5.3% were obtained. These efficiencies were found to decrease slowly with time because of the oxide films formed at the ZnO/Si interface upon oxygen penetration through the porous ZnO. Oxygen barrier layers could be necessary in order to prevent the reduction of conversion efficiencies.

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PV연계형 ESS의 설치 규모에 따른 수익영향 (Profitability Analysis of ESS with PV Generation)

  • 김창수;최상봉
    • Current Photovoltaic Research
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    • 제8권3호
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    • pp.86-93
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    • 2020
  • The investment in solar and wind generation is rapidly increasing with government's renewable expansion policy and Renewable Portfolio Standard (RPS). Since the large penetration of solar and wind generation increases the variability and uncertainty of supply and demand balance in power system, the government is pursuing the policy of supplying energy storage system (ESS) linked to renewable energy. ESS contributes to the ease of transmission and distribution grid by shifting PV generation from daytime to evening hours. Recently, the declining market price of REC as ESS incentive, policies to cut down incentives and limited ESS storage due to fire events lead to the aggravation of long-term profitability, thus working as a barrier of ESS spreading. In this study, the factors affecting the profit of ESS are analyzed and brief indicators are derived. Based on the indicators, the profit changes are analyzed considering the variation of REC market price and REC incentive weights. Based on the profit change with respect to the increase of ESS capacity, economical ESS installation capacity is suggested.

압축 벤토나이트 완충재의 온도에 따른 열전도도 평가 (Thermal Conductivity Evaluation of Compacted Bentonite Buffers Considering Temperature Variations)

  • 윤석;박승훈;김민섭;김건영;이승래
    • 방사성폐기물학회지
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    • 제18권1호
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    • pp.43-49
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    • 2020
  • 고준위폐기물을 심지층에 처분하기 위한 공학적방벽의 구성 요소로는 처분용기, 완충재, 뒷채움재 등이 있다. 이 중 완충재는 처분용기와 근계암반 사이의 빈 공간에 설치되는 물질로써, 주변 지하수로부터 처분용기를 보호하며 방사성 핵종의 유출을 저지하는 등의 역할을 한다. 또한 처분용기에서 발생하는 고온의 열량은 완충재로 직접 전파되기에 완충재의 열전도도는 처분시스템의 안전성 평가에 있어 매우 중요하다고 할 수 있다. 따라서 본 연구에서는 국내 경주산 압축 벤토나이트 완충재의 열전도도 특성을 규명하였으며 실제 처분용기에서 발생되는 고온의 특성을 반영하여 상온에서 80~90℃까지의 범위에서 압축 벤토나이트의 열전도도를 측정하였다. 온도증가에 따라 압축 벤토나이트의 열전도도는 5~20% 가량 증가하였으며 초기 포화도가 클수록 열전도도 증가는 더 크게 나타났다.

유사정적 공진주 시험을 이용한 벤토나이트 완충재와 절리 암반의 역학적 상호작용 특성 평가 (Evaluation of Mechanical Interactions Between Bentonite Buffer and Jointed Rock Using the Quasi-Static Resonant Column Test)

  • 김지원;강석준;김진섭;조계춘
    • 터널과지하공간
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    • 제31권6호
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    • pp.561-577
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    • 2021
  • 고준위방사성폐기물 심층처분장 내 압축 벤토나이트 완충재는 지하수 유입으로 인해 포화되어 팽윤하고, 이때 발생하는 팽윤압으로 인해 벤토나이트가 처분공 주변 암반 균열 내로 침투하게 된다. 침투한 벤토나이트는 지하수 흐름에 노출되어 공학적방벽 외부로 침식될 수 있고, 이러한 벤토나이트 완충재의 침식 및 질량 유실은 공학적방벽의 물리적 건전성에 악영향을 미칠 수 있다. 따라서 심층처분시스템의 장기 건전성을 평가하기 위해 지하수 유입과 완충재의 암반 균열 침투에 따른 완충재와 근계암반 사이의 상호작용이 평가되어야 한다. 본 연구에서는 유사정적 공진주 시험기를 이용하여 벤토나이트 완충재의 암반 균열 침투가 근계암반의 역학적 거동에 미치는 영향을 실험적으로 평가하였다. 국내 심층처분장의 완충재 재료로 고려되는 경주 벤토나이트와 한국원자력연구원의 지하처분연구시설에서 채취한 화강암 디스크를 이용해 완충재 충전물이 포함된 등가연속체 절리 암반 시편을 모사하였고, 수직응력 및 포화여부에 따른 탄성파 속도 변화를 측정하여 절리면의 절리수직강성 및 절리전단강성 변화를 유추하였다. 본 연구에서 수행한 실내실험 결과는 향후 불연속면을 고려한 처분시스템 성능평가 해석의 입력변수로 사용될 수 있을 것으로 판단된다.

구형의 질화탄소 마이크로세공체의 수소저장 특성 (Hydrogen Storage Properties of Microporous Carbon Nitride Spheres)

  • 김세윤;서원혁;최정훈;이유수;이성근;;강정구
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2009년도 춘계학술대회 논문집
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    • pp.744-744
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    • 2009
  • The development of safe and suitable hydrogen storage materials is one of key issues for commercializing hydrogen as an energy carrier. Carbon based materials have been investigated for many years to store hydrogen by the adsorption of the gas on the surface of the carbon structure. Recently, it is reported that carbon nitride nanobells have high hydrogen storage capacity since the nitrogen atom plays an important role on attracting hydrogen molecules. Here we report carbon nitride microporous spheres (CNMS) which have the maximum surface area of 995.3 $m^2/g$. Melamine-Formaldehyde resin is the source of carbon and nitrogen in CNMS. Most of the CNMS pores have diameters in the range of 6 to 8 A which could give a penetration energy barrier to a certain molecule. In addition, the maximum hydrogen storage capacities of carbon nitride spheres are 1.9 wt% under 77 K and 1 atm.

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Effect of Applied Voltage on the Reliability of Coating Flaw Detection of Pipe with Different Buried Depths

  • Lim, B.T.;Kim, M.G.;Kim, K.T.;Chang, H.Y.;Kim, Y.S.
    • Corrosion Science and Technology
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    • 제18권6호
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    • pp.277-284
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    • 2019
  • External corrosion control of buried pipe can be achieved by the combination of barrier coating and cathodic protection. Coating damage and deterioration can be induced by many reasons; damage during handling and laying, enhanced failure at low temperatures, failure during commissioning and operation, disbanding due to inadequate surface cleaning, rock penetration during installation and service etc. This work focused on the effect of survey conditions on the reliability of coating flaw detection of buried pipes. The effects of applied voltage and anode location on the detection reliability of coating flaw of buried pipe in soil with the resistivity of ca. 25.8 kΩ·cm were discussed. Higher applied voltage increased the detection reliability, regardless of buried depth, but deeper burial depth reduced the reliability. The location of the anode has influenced on the detection reliability. This behaviour may be induced by the variation of current distribution by the applied voltage and buried depth. From the relationship between the applied voltage and reliability, the needed detection potential to get a desire detection reliability can be calculated to get 100% detection reliability using the derived equation.