• 제목/요약/키워드: Titanium nanotubes

검색결과 71건 처리시간 0.025초

Quantitative Comparison of the Photocatalytic Efficiency of TiO2 Nanotube Film and TiO2 Powder

  • Jang, Jun-Won;Park, Sung Jik;Park, Jae-Woo
    • 한국지하수토양환경학회지:지하수토양환경
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    • 제21권2호
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    • pp.8-14
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    • 2016
  • We compared the plausible reaction mechanism and quantitative efficiency of highly self-organized TiO2 nanotube (ntTiO2) film with TiO2 powder. Film was fabricated by electrochemical potentiostatic anodization of titanium thin film in an ethylene-glycol electrolyte solution containing 0.3 wt% NH4F and 2 vol% deionized water. Nanotubes with a pore size of 80-100 nm were formed by anodization at 60 V for 3 h. Humic acid (HA) was degraded through photocatalytic degradation using the ntTiO2 film. Pseudo first-order rate constants for 0.3 g of ntTiO2, 0.3 g TiO2 powder, and 1 g TiO2 powder were 0.081 min−1, 0.003 min−1, and 0.044 min−1, respectively. HA adsorption on the ntTiO2 film was minimal while adsorption on the TiO2 powder was about 20% based on thermogravimetric analysis. Approximately five-fold more normalized OH radicals were generated by the ntTiO2 film than the TiO2 powder. These quantitative findings explain why ntTiO2 film showed superior photocatalytic performance to TiO2 powder.

황산티타늄과 탄소나노튜브로부터 가수분해로 제조된 CNT-TiO2 나노복합체의 광촉매활성 (Photo-catalytic Activity of CNT-TiO2 Nano Complex Prepared from Titanium Oxysulfate and Carbon Nanotube by Hydrosis)

  • 김상진;정민정;이영석
    • 공업화학
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    • 제21권1호
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    • pp.58-62
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    • 2010
  • $TiOSO_4$와 다층벽탄소나노튜브(MWCNT)를 사용하여 가수분해법으로 CNT-$TiO_{2}$ 나노복합체를 제조하였다. 제조된 $TiO_{2}$-CNT 복합체의 CNT는 아나타제 $TiO_{2}$에 균일하게 분산되어 있으며 MWCNT의 첨가량이 증가함에 따라 결정성 탄소의 비율과 O/Ti 비율이 증가함을 확인할 수 있다. CNT-$TiO_{2}$복합체의 광활성 및 오염물 흡착능력을 UV 조사 시간에 따른 메틸렌블루의 분해정도로 확인하였다. MWCNT의 비율이 높아질수록 높은 흡착능과 광분해능을 나타내었다. 이는 MWCNT의 높은 비표면적, 산소포함 관능기, 낮은 밴드갭 에너지, 높은 전기전도성, 높은 부피 대 표면적 비율, 균일한 구조 및 특성으로 인하여 CNT-$TiO_{2}$ 복합체의 광활성에 도움을 주는 것으로 보인다.

양극산화에 의한 나노다공성 TiO2 박막 생성 (Formation of Nanoporous TiO2 Thin Films on Si by Anodic Oxidation)

  • 윤여준;김도홍;장호원
    • 한국전기전자재료학회논문지
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    • 제23권8호
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    • pp.655-659
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    • 2010
  • Nanoporous titanium dioxide ($TiO_2$) is very attractive material for various applications due to the high surface to volume ratio. In this study, we have fabricated nanoporous $TiO_2$ thin films on Si by anodic oxidation. 500-nm-thick titanium (Ti) films were deposited on Si by using electron beam evaporation. Nanoporous structures in the Ti films were obtained by anodic oxidization using ethylene glycol electrolytes containing 0.3 wt% $NH_4F$ and 2 vol% $H_2O$ under an applied bias of 5 V. The diameter of nanopores in the Ti films linearly increased with anodization time and the whole Ti layer could become nanoporous after anodizing for 3 hours, resulting in vertically aligned nanotubes with the length of 200~300 nm and the diameter of 50~80 nm. Upon annealing at $600^{\circ}C$ in air, the anodized Ti films were fully crystallized to $TiO_2$ of rutile and anatase phases. We believe that our method to fabricate nanoporous $TiO_2$ films on Si is promising for applications to thin-film gas sensors and thin-film photovoltaics.

티타니아 나노튜브를 이용한 염료감응 태양전지 (Titania Nanotube-based Dye-sensitized Solar Cells)

  • 김태현;정지훈
    • Korean Chemical Engineering Research
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    • 제56권4호
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    • pp.447-452
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    • 2018
  • HF, NaF, $NH_4F$와 같이 플루오르 이온(F-)이 함유된 전해질에서 티타늄 금속판을 양극산화시켜 $0.34{\mu}m$부터 최대 $8.9{\mu}m$까지 다양한 길이의 티타니아 나노튜브(TNT)를 제조하였다. 양극산화에 의해 제조된 TNT를 $450^{\circ}C$에서 소성시키면 광 활성을 가지는 아나타제 결정이 생성되었다. TNT 기반 염료감응 태양전지(DSSC)는 TNT 길이가 $2.5{\mu}m$일때 광전환 효율이 4.71%로 최대를 나타내었다. 이 값은 티타니아 페이스트를 코팅하여 제작한 FTO 기반 DSSC의 광전환 효율 보다 약 18% 높았다. 또한 TNT-DSSC의 단락전류밀도($J_{sc}$)는 $9.74mA/cm^2$로 FTO-DSSC의 $7.19mA/cm^2$ 보다 약 35% 이상 높았다. TNT-DSSC 태양전지의 광전환 효율이 더 높은 이유는 염료에서 생성된 광전자가 TNT를 통해 전극 표면으로 빨리 전달되어 광전자와 염료가 재결합 되는 것이 억제되었기 때문이다.

CNTs 합성을 통해 향상된 비표면적을 갖는 Ti 다공체의 제조 (Fabrication of Ti Porous body with Improved Specific Surface Area by Synthesis of CNTs)

  • 최혜림;변종민;석명진;오승탁;김영도
    • 한국분말재료학회지
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    • 제23권3호
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    • pp.235-239
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    • 2016
  • This study is performed to fabricate a Ti porous body by freeze drying process using titanium hydride ($TiH_2$) powder and camphene. Then, the Ti porous body is employed to synthesize carbon nanotubes (CNTs) using thermal catalytic chemical vapor deposition (CCVD) with Fe catalyst and methane ($CH_4$) gas to increase the specific surface area. The synthesized Ti porous body has $100{\mu}M$-sized macropores and $10-30{\mu}m$-sized micropores. The synthesized CNTs have random directions and are entangled with adjacent CNTs. The CNTs have a bamboo-like structure, and their average diameter is about 50 nm. The Fe nano-particles observed at the tip of the CNTs indicate that the tip growth model is applicable. The specific surface area of the CNT-coated Ti porous body is about 20 times larger than that of the raw Ti porous body. These CNT-coated Ti porous bodies are expected to be used as filters or catalyst supports.

촉매 화학기상증착 공정에서 온도구배 설정을 통한 타이타늄 기판에서의 CNT 성장 거동 (CNT Growth Behavior on Ti Substrate by Catalytic CVD Process with Temperature Gradient in Tube Furnace)

  • 박주혁;변종민;김형수;석명진;오승탁;김영도
    • 한국분말재료학회지
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    • 제21권5호
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    • pp.371-376
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    • 2014
  • In this study, modified catalytic chemical vapor deposition (CCVD) method was applied to control the CNTs (carbon nanotubes) growth. Since titanium (Ti) substrate and iron (Fe) catalysts react one another and form a new phase ($Fe_2TiO_5$) above $700^{\circ}C$, the decrease of CNT yield above $800^{\circ}C$ where methane gas decomposes is inevitable under common CCVD method. Therefore, we synthesized CNTs on the Ti substrate by dividing the tube furnace into two sections (left and right) and heating them to different temperatures each. The reactant gas flew through from the end of the right tube furnace while the Ti substrate was placed in the center of the left tube furnace. When the CNT growth temperature was set $700/950^{\circ}C$ (left/right), CNTs with high yield were observed. Also, by examining the micro-structure of CNTs of $700/950^{\circ}C$, it was confirmed that CNTs show the bamboo-like structure.

치과용 Ti-6Al-4V 합금 골 고정판 표면에 형성된 나노튜브의 부식거동 (Corrosion Behavior of Nanotube Formed on the Bone Plate of Ti-6Al-4V Alloy for Dental Use)

  • 김원기;이충환;정재헌;최한철
    • 한국표면공학회지
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    • 제43권1호
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    • pp.25-30
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    • 2010
  • Titanium and titanium alloys are widely used for orthopedic and dental implants for their superior mechanical properties, low modulus, excellent corrosion resistance and good biocompatibility. In this study, corrosion behaviors of nanotube formed on the bone plate of Ti-6Al-4V alloy for dental use have been investigated. $TiO_2$ nanotubes were formed on the dental bone plates by anodization in $H_3PO_4$ containing 0.6 wt % NaF solution at $25^{\circ}C$. Electrochemical experiments were performed using a conventional three-electrode configuration with a platinum counter electrode and a saturated calomel reference electrode. Anodization was carried out using a scanning potentiostat (EG&G Co, Model 263A USA), and all experiments were conducted at room temperature. The surface morphology was observed using field emission scanning electron microscopy (FE-SEM) and energy dispersive x-ray spectroscopy(EDS). The corrosion behavior of the dental bone plates was examined using potentiodynamic test(potential range of -1500~2000 mV) in a 0.9% NaCl solution by potentiostat (EG&G Co, PARSTAT 2273. USA). The inner diameter of nanotube was about 150~180 nm with wall thickness of about 20 nm. The interspace of nanotube to nanotube was 50 nm. The passive region of the nanotube formed bone plates showed the broad range compared to non-nanotube formed bone plates. The corrosion surface of sample was covered with corrosion products.

티타니아 나노튜브(TNT) 박막의 제조 및 특성에 관한 연구 (Preparation and Characterizations of Titania Nanotube Thin Films)

  • 이영록;정지훈
    • Korean Chemical Engineering Research
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    • 제49권5호
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    • pp.652-656
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    • 2011
  • 양극산화에 의해 티타니아 나노튜브(TNT) 박막과 나노필름(TNF) 박막을 제조하여 이의 광촉매 반응특성을 연구하였다. TNT 박막이 형성된 티타늄 판에 자외선을 조사하여 용액 내 메틸렌블루의 분해율을 측정하였다. TNT의 길이가 증가할수록 광촉매(PC) 반응에 의한 메틸렌블루 분해율이 증가하였다. 광전자의 재결합을 억제하기 위해 포텐셜을 가해준 광전자촉매(PEC) 반응에서는 전반적으로 분해율이 상승하였으며, 길이에 따른 분해율 차이가 상대적으로 작았다. 튜브형태가 아닌 필름형태의 TNF는 TNT에 비해 낮은 분해율을 나타내었으며, 광촉매 반응에서 분해율의 차이가 더 크게 나타났다.

수분환경에서 탄소섬유강화 에폭시수지의 내구성에 대한 나노입자의 영향 (Study of Nanoparticle Effect on Durability of Carbon fiber/Epoxy Resin Composites in Moisture Environment)

  • 안석환;최영민;문창권
    • 동력기계공학회지
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    • 제18권2호
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    • pp.43-49
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    • 2014
  • This study has been investigated on the durability of carbon fiber/epoxy composites (CFRP) in moisture environment. The carbon fiber/epoxy composites were modified to use the nanoparticles such as carbon nanotubes and titanium oxide. These hybrid composites were exposed to moisture environment for a certain period of time. Weight gain according to immersion time, quasi-static tensile test and micro-graphic characterization were investigated on the samples exposed to moisture environment. Consequently, the weight gains increased with increasing immersion time and weight gain of the hybrid composites was lower than the one of CFRP through the whole immersion time. The tensile strengths decreased with increasing immersion time and tensile strengths of the hybrid composites were higher than the one of CFRP through the whole immersion time. The CFRP were observed more degraded than hybrid compositess in moisture environment. Therefore, it was concluded that the addition of nanoparticles in CFRP could lead to improve the durability in moisture environment.

광촉매 활용을 위한 TiO2 나노튜브 제조기술 개발 (Development of Preparation Technology for TiO2 Nanotube Photocatalyst)

  • 구혜민;이용호;박대원
    • 한국물환경학회지
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    • 제31권4호
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    • pp.360-366
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    • 2015
  • In this study $TiO_2$ nanotube was grown on Ti by anodic oxidation to be used as a photocatalyst. The growth and formation of $TiO_2$ nanotube was monitored during anodization in ethylene glycol electrolyte by changing voltage and composition of electrolyte. Commercially available titanium plate (purity>99.8%, thickness:1mm) Applied voltage and concentration of $NH_4F$ and $H_2O$ were varied to find the optimum condition. Applied voltage is important to make $TiO_2$ nanotube and the electrolyte containing ethylene glycol, 0.2 wt% $NH_4F$ and 2 vol% $H_2O$ was confirmed to be the optimum conditions for the formation and growth of $TiO_2$ nanotubes.