• 제목/요약/키워드: Templating method

검색결과 28건 처리시간 0.024초

Highly Ordered Porous Silica Adsorbent with Dual Pore Size Regime for Bulky VOC Gas Sensing

  • Yun, Ji Sun;Jeong, Young Hun;Nam, Joong-Hee;Cho, Jeong-Ho;Paik, Jong-Hoo
    • 센서학회지
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    • 제22권3호
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    • pp.181-184
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    • 2013
  • Highly ordered porous materials having mesopores in the walls of macropores showed improved adsorption dynamics results for VOC molecules, especially bulky molecules. These meso/macroporous mataerials were synthesized by the dual templating method, and mesopore and macropore size were controlled by adjusting the templates for each pore size regime. In the case of adsorption and desorption of small VOC molecules (toluene), although meso/macroporous MCM-41 with smaller mesopore size showed improved results, meso/macroporous SBA-15 with larger mesopore size was not improved regardless of the existence of macropores, since there was no limitation of movement through the larger mesopore. However, the adsorption dynamics of bulky VOC molecules (p-xylene) over meso/macroporous SBA-15 were drastically improved by increasing the macropore size.

Adsorption of ammonia using mesoporous alumina prepared by a templating method

  • Yeom, Changjoo;Kim, Younghun
    • Environmental Engineering Research
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    • 제22권4호
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    • pp.401-406
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    • 2017
  • Ammonia, $NH_3$, is a key chemical widely used in chemical industries and a toxic pollutant that impacts human health. Thus, there is a need for the development of effective adsorbents with high uptake capacities to adsorb $NH_3$. An adsorbent with a high surface area and a small pore size is generally preferred in order to have a high capacity for the removal of $NH_3$. The use inorganic nanoporous materials as gas adsorbents has increased substantially and emerged as an alternative to zeolite and activated carbon. Herein, mesoporous alumina (MA) was prepared and used as an $NH_3$ adsorbent. MA showed good pore properties such as a uniform pore size and interlinked pore system, when compared to commercial adsorbents (activated carbon, zeolite, and silica powder). MA has free hydroxyl groups, serving as useful adsorption sites for $NH_3$. In an adsorption isotherm test, MA exhibited 4.7-6.5 times higher uptake capacities for $NH_3$ than commercial adsorbents. Although the larger surface areas of adsorbents are important features of ideal adsorbents, a regular and interlinked adsorbent pore system was found to be a more crucial factor to adsorb $NH_3$.

다공성 산화타이타늄 나노입자 합성과 염료감응형 태양전지 응용 (Synthesis of Mesoporous Titanium Dioxide Nanoparticles and Their Application into Dye Sensitized Solar Cells)

  • 김휘동;안지영;김수형
    • 한국신재생에너지학회:학술대회논문집
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    • 한국신재생에너지학회 2010년도 춘계학술대회 초록집
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    • pp.64.2-64.2
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    • 2010
  • In order to improve the overall power conversion efficiency in dye-sensitized solar cells (DSSCs), it is very important to secure the sufficient surface area of photocatalytic nanoparticles layer for absorbing dye molecules. It is because increasing the amount of dye absorbed generally results in increasing the amount of light harvesting. In this work, we proposed a new method for increasing the specific surface area of photocatalytic titanium oxide ($TiO_2$) nanoparticles by using an inorganic templating method. Salt-$TiO_2$ composite nanoparticles were synthesized in this approach by spray pyrolyzing both the titanium butoxide and sodium chloride solution. After aqueous removal of salt from salt-$TiO_2$ composite nanoparticles, mesoporous $TiO_2$ nanoparticles with pore size of 2~50 nm were formed and then the specific surface area of resulting porous $TiO_2$ nanoparticle was measured by Brunauer-Emmett-Teller (BET) method. Generally, commercially available P-25 with the average primary size of ~25 nm $TiO_2$ nanoparticles was used as an active layer for dye-sensitized solarcells, and the specific surface area of P-25 was found to be ~50 $m^2/g$. On the other hand, the specific surface area of mesoporous $TiO_2$ nanoparticles prepared in this approach was found to be ~286 $m^2/g$, which is 5 times higher than that of P-25. The increased specific surface area of $TiO_2$ nanoparticles will absorb relatively more dye molecules, which can increase the short curcuit current (Jsc) in DSSCs. The influence of nanoporous structures of $TiO_2$ on the performance of DSSCs will be discussed in terms of the amount of dye molecules absorbed, the fill factor, the short circuit current, and the power conversion efficiency.

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Electrochemical Behavior of Pt-Ru Catalysts on Zeolite-templated Carbon Supports for Direct Methanol Fuel Cells

  • Lim, Tae-Jin;Lee, Seul-Yi;Yoo, Yoon-Jong;Park, Soo-Jin
    • Bulletin of the Korean Chemical Society
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    • 제35권12호
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    • pp.3576-3582
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    • 2014
  • Zeolite-templated carbons (ZTCs), which have high specific surface area, were prepared by a conventional templating method using microporous zeolite-Y for catalyst supports in direct methanol fuel cells. The ZTCs were synthesized at different temperatures to investigate the characteristics of the surface produced and their electrochemical properties. Thereafter, Pt-Ru was deposited at different carbonization temperatures by a chemical reduction method. The crystalline and structural features were investigated using X-ray diffraction and scanning electron microscopy. The textural properties of the ZTCs were investigated by analyzing $N_2$/77 K adsorption isotherms using the Brunauer-Emmett-Teller equation, while the micro- and meso-pore size distributions were analyzed using the Barrett-Joyner-Halenda and Harvarth-Kawazoe methods, respectively. The surface morphology was characterized using transmission electron microscopy and inductively coupled plasma-mass spectrometry. The electrochemical properties of the Pt-Ru/ZTCs catalysts were also analyzed by cyclic voltammetry measurements. From the results, the ZTCs carbonized at $900^{\circ}C$ show the highest specific surface areas. In addition, ZTC900-PR led to uniform dispersion of Pt-Ru on the ZTCs, which enhanced the electro-catalytic activity of the Pt-Ru catalysts. The particle size of ZTC900-PR catalyst is about 3.4 nm, also peak current density from the CV plot is $12.5mA/cm^2$. Therefore, electro-catalytic activity of the ZTC900-PR catalyst is higher than those of ZTC1000-PR catalyst.

Development of Micro-Tubular Perovskite Cathode Catalyst with Bi-Functionality on ORR/OER for Metal-Air Battery Applications

  • Jeon, Yukwon;Kwon, Ohchan;Ji, Yunseong;Jeon, Ok Sung;Lee, Chanmin;Shul, Yong-Gun
    • Korean Chemical Engineering Research
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    • 제57권3호
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    • pp.425-431
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    • 2019
  • As rechargeable metal-air batteries will be ideal energy storage devices in the future, an active cathode electrocatalyst is required with bi-functionality on both oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) during discharge and charge, respectively. Here, a class of perovskite cathode catalyst with a micro-tubular structure has been developed by controlling bi-functionality from different Ru and Ni dopant ratios. A micro-tubular structure is achieved by the activated carbon fiber (ACF) templating method, which provides uniform size and shape. At the perovskite formula of $LaCrO_3$, the dual dopant system is successfully synthesized with a perfect incorporation into the single perovskite structure. The chemical oxidation states for each Ni and Ru also confirm the partial substitution to B-site of Cr without any changes in the major perovskite structure. From the electrochemical measurements, the micro-tubular feature reveals much more efficient catalytic activity on ORR and OER, comparing to the grain catalyst with same perovskite composition. By changing the Ru and Ni ratio, the $LaCr_{0.8}Ru_{0.1}Ni_{0.1}O_3$ micro-tubular catalyst exhibits great bi-functionality, especially on ORR, with low metal loading, which is comparable to the commercial catalyst of Pt and Ir. This advanced catalytic property on the micro-tubular structure and Ru/Ni synergy effect at the perovskite material may provide a new direction for the next-generation cathode catalyst in metal-air battery system.

고분자 전해질 연료전지 백금-루테늄 나노입자 촉매의 전기화학적 거동에 대한 중형기공 탄소 지지체의 활성화 효과 (Influence of Activation of Mesoporous Carbon on Electrochemical Behaviors of Pt-Ru Nanoparticle Catalysts for PEMFCs)

  • 김병주;박수진
    • 폴리머
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    • 제35권1호
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    • pp.35-39
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    • 2011
  • 본 연구에서는 고분자 전해질 연료전지의 타소 지지체로 중형기공 실리카(SBA-15)를 이용한 전통적인 주형합성법을 이용하여 중형기공 탄소(CMK-3)를 합성하였다. 합성된 CMK-3는 추가적으로 비표면적과 물리적 성질을 증가시키기 위하여 활성화제로 수산화 칼륨 (KOH)양을 0, 1, 3, 및 4g으로 달리하여 활성화하였다. 그리고 활성화된 CMK-3(K-CMK-3)에 화학적 환원 방법을 이용하여 백금과 루테늄을 답지하였다. CMK-3에 담지된 백금-루테늄 촉매의 특성을 확인하기 위해 비표면적 장치(BET), X-선 회절분석법(XRD), 주사전자현미경(SEM), 투과전자현미정(TEM), 유도결합 플라즈마 질량분석기(ICP-MS)를 이용하였다. 또한, 백금 루테늄 촉매의 전기화학적인 특성을 순환전류전압 실험으로 분석하였다. 결론적으로, 3 g의 KOH로 활성화된 CMK-3(K3g-CMK-3)가 가장 넓은 비표면적을 나타냈다. 또한, K3g-CMK-3의 높은 비표면적은 백금-루테늄의 균일한 분산과 함께 전기적인 촉매의 성능을 향상시키는 것을 확인할 수 있었다.

직접메탄올 연료전지용 표면처리된 중형기공 탄소지지체에 담지된 백금-루테늄 촉매의 전기화학적 거동 (Electrochemical Behaviors of Pt-Ru Catalysts on the Surface Treated Mesoporous Carbon Supports for Direct Methanol Fuel Cells)

  • 김병주;서민강;최경은;박수진
    • 공업화학
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    • 제22권2호
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    • pp.167-172
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    • 2011
  • 본 연구에서는 중형기공 탄소(MCs)를 표면처리하여, 표면 관능기를 분석하고, 표면처리 효과를 조사하였다. 직접 메탄올 연료전지의 탄소지지체로 중형기공 실리카(SBA-15)를 이용한 전통적인 주형합성법을 이용하여 중형기공 탄소(MCs)를 합성하였다. 중형기공 탄소는 인산의 농도를 각각 0, 1, 3, 4, 및 5 M로 달리하여, 343 K에서 6 h 동안 처리하였다. 그리고 표면처리된 중형기공 탄소(H-MCs)에 화학적 환원방법을 이용하여 백금과 루테늄을 담지하였다. 표면처리된 탄소지지체에 담지된 백금-루테늄 촉매의 특성을 확인하기 위해 비표면적 측정장치(BET), X-선 회절분석법(XRD), X-선 광전자 분광법(XPS), 투과전자현미경(TEM), 유도결합 플라즈마 질량분석기(ICP-MS)를 이용하였다. 또한, 백금-루테늄 촉매의 전기화학적인 특성을 순환전류전압 실험으로 분석하였다. 표면분석의 결과로부터, 산소를 포함한 화학관능기가 탄소지지체에 도입된 사실을 알 수 있었다. 결론적으로, 4 M의 인산으로 표면처리한 H4M-MCs가 백금-루테늄의 균일한 분산과 함께 전기적인 촉매의 성능을 향상시키는 것을 확인할 수 있었다.

계면활성제를 이용하여 제조된 중형기공성 알루미나 담체에 담지된 니켈촉매 상에서 액화천연가스(LNG)의 수증기개질반응에 의한 수소 제조 (Hydrogen Production by Steam Reforming of Liquefied Natural Gas (LNG) over Nickel Catalyst Supported on Surfactant-templated Mesoporous Alumina)

  • 서정길;윤민혜;송인규
    • 청정기술
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    • 제15권1호
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    • pp.47-53
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    • 2009
  • 양이온성(C), 음이온성(A) 및 비이온성(N) 계면활성제 각각을 주형물질로 사용하여 중형기공성 알루미나 (A-C, A-A 및 A-N)를 제조한 후, 이를 담체로 활용하여 일반적인 함침법으로 담지 니켈촉매(Ni/A-C, Ni/A-A 및 Ni/A-N)를 제조하였으며, 이를 액화천연가스의 수증기 개질반응에 의한 수소 제조에 적용하였다. 소성된 촉매에서 니켈종은 계면활성제의 종류에 상관없이 중형기공성 알루미나 담체의 표면에 균일하게 분산되었다. 하지만 환원된 촉매에서 니켈과 알루미나 담체 간의 상호작용 세기는 계면활성제의 종류에 밀접하게 의존하였다. 액화천연가스 전환율 및 건가스 중 수소가스 조성은 Ni/A-C < Ni/A-A < Ni/A-N의 순으로 증가하였다. 환원된 촉매 상의 니켈 비표면적이 증가할수록 반응활성 역시 증가하는 것으로 나타났으며, 제조된 촉매중에서 니켈 비표면적이 가장 높은 Ni/A-N 촉매가 가장 높은 반응환성을 나타내었다.