• Title/Summary/Keyword: Ti-oxide

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Improvement of Nitrogen Oxide Removal of Concrete Sidewalk Block Using by Conductive Photocatalyst (전도성 광촉매를 이용한 콘크리트 블록의 대기중 질소산화물 저감에 관한 연구)

  • Geun-Guk Bae;In-Sook Cho;Yong-Sik Ahn
    • Journal of the Korean Recycled Construction Resources Institute
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    • v.11 no.4
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    • pp.493-500
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    • 2023
  • The use of TiO2 photocatalyst in the production of concrete blocks for the purpose of nitrogen oxide reduction is an issue of controversy due to the conflicting evidence on its effectiveness. Efforts have been made to reduce the level of nitrogen oxides in the environment by using of titanium dioxide (TiO2). This study examined the effect of incorporating activated carbon into concrete blocks on the reduction of nitrogen oxides released into the atmosphere and the durability of the blocks. The efficiency of photocatalyst was enhanced through the addition of a surrounding conductive substance. The addition of activated carbon resulted in a significant increase in the electrical conductivity of photocatalytic blocks and improved durability. The cement mixture using 5 % TiO2 and 15 % activated carbon exhibited the optimal mixing ratio for the purpose of nitrogen oxide removal. The effect of the addition of conductive carbon to the photocatalytic blocks was discussed with the results of conductivity, flexural and comprssive strength and nitrogen oxide removal test. The relationship between the addition of conductive carbon to the photocatalytic blocks and its resulting effects have been studied by several tests, including conductivity, flexural and compressive strength, and nitrogen oxide removal.

Electrically Conductive Silicon Carbide without Oxide Sintering Additives

  • Frajkorova, Frantiska;Lences, Zoltan;Sajgalik, Pavol
    • Journal of the Korean Ceramic Society
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    • v.49 no.4
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    • pp.342-346
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    • 2012
  • This work deals with the preparation of dense SiC based ceramics with high electrical conductivity without oxide sintering additives. SiC samples with different content of conductive Ti-NbC phase were hot pressed at $1850^{\circ}C$ for 1 h in Ar atmosphere under mechanical pressure of 30 MPa. The conductive phase is a mixture of Ti-NbC in weight ratio of Ti/NbC 1:4. Composite with 50% of conductive Ti-NbC phase showed the highest electrical conductivity of $30.6{\times}10^3\;S{\cdot}m^{-1}$, while the good mechanical properties of SiC matrix were preserved (fracture toughness 4.5 $MPa{\cdot}m^{1/2}$ and Vickers hardness 18.7 GPa). The obtained results show that use of NbC and Ti as sintering and also electrically conductive additives is appropriate for the preparation of SiC-based composite with sufficient electrical conductivity for electric discharge machining.

The Effects of Etch Chemicals on the Electrical Properties of Metal-Oxide-Semiconductor (MOS) Device with Plasma Enhanced Atomic Layer Deposited (PEALD) TiN Metal Electrode

  • Kim, Yeong-Jin;Han, Hun-Hui;Im, Dong-Hwan;Son, Seok-Gi;Sergeevich, Andrey;Choe, Chang-Hwan
    • Proceedings of the Korean Institute of Surface Engineering Conference
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    • 2015.11a
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    • pp.244-245
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    • 2015
  • PEALD TiN 금속 전극을 갖는 MOS device에서 SC1 ($NH_4/H_2O_2/H_2O=1:2:5$), SPM ($H_2SO_4/H_2O_2=10:1$), $H_2O_2$ etch chemical을 이용해 TiN 식각 후 oxide 표면 잔류 Ti에 의한 전기적 특성 분석을 진행 하였다. Etch chemical 중 SPM을 이용한 소자의 전기적 특성이 우수하였는데, 이는 잔류Ti atom의 양이 다른 etch chemical을 사용한 것 대비 낮았기 때문이다. 이로 인하여 낮은 leakage current, less frequency dependence의 특성이 관찰되었다. 또한, 후속 열처리를 통해 더욱 우수한 특성이 관찰 되었다. 이러한 공정기술은 single 전극을 갖는 CMOS 형성 시 사용 될 수 있을 것으로 기대된다.

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Charactristice of a colored Galvanized Coating using Ti-Zn Alloy System (Zn-Ti계용융아연 도금강판의 착색화 특성)

  • 전선호
    • Journal of the Korean institute of surface engineering
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    • v.30 no.5
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    • pp.320-332
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    • 1997
  • The development of colored surface on zinc coating by the oxidation of a melten alloy of zinc with a minor amount of oxygen-avid additive such as tianium has been studied. Using a galvanizing Zinc alloy containing 0.1 to 0.3wt%Ti, gold, purple or blue color was developed clearly and stably, depending upon the extent of oxidation, by air cooling after hot dipping in a bath at temperature of $550^{\circ}C$ to $600^{\circ}C$. The source of the color is light interference with surface oxide layer. THe final color depends on the thickness of the color depends on the thickness of $TiO_2$, played So compositing, temperature and time at elevated temperature after are all controlling variables. Since oxidation film such as $TiO_2$ played role of passivation film, the corrosion resistance in a colored galvanized steel sheet. It is also thought that surface oxide layer of $TiO_2$ inhibited dissolution of the coating layer.

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Synthesis of NiTi Alloy Powder by the Reaction of NiO-TiH2 Mixing Powders (NiO-TiH2 혼합분말의 반응을 이용한 NiTi 합금분말 제조)

  • Jeon, Ki Cheol;Lee, Han-Eol;Yim, Da-Mi;Oh, Sung-Tag
    • Journal of Powder Materials
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    • v.22 no.4
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    • pp.266-270
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    • 2015
  • The synthesis of NiTi alloy powders by hydrogen reduction and dehydrogenation process of NiO and $TiH_2$ powder mixtures is investigated. Mixtures of NiO and $TiH_2$ powders are prepared by simple mixing for 1 h or ball milling for 24 h. Simple-mixed mixture shows that fine NiO particles are homogeneously coated on the surface of $TiH_2$ powders, whereas ball milled one exhibits the morphology with mixing of fine NiO and $TiH_2$ particles. Thermogravimetric analysis in hydrogen atmosphere reveals that the NiO and $TiH_2$ phase are changed to metallic Ni and Ti in the temperature range of 260 to $290^{\circ}C$ and 553 to $639^{\circ}C$, respectively. In the simple-mixed powders by heat-up to $700^{\circ}C$, agglomerates with solid particles and solidified liquid phase are observed, and the size of agglomerates is increased at $1000^{\circ}C$. From the XRD analysis, the presence of liquid phase is explained by the formation and melting of $NiTi_2$ inter-metallic compound due to an exothermic reaction between Ni and Ti. The simple-mixed powders, heated to $1000^{\circ}C$, lead to the formation of NiTi phase but additional Ni-, Ti-rich and Ti-oxide phases. In contrast, the microstructure of ball-milled powders is characterized by the neck-grown particles, forming $Ni_3Ti$, Ti-oxide and unreacted Ni phase.

Surface Apatite Growth of NaOH and SBF Treated CP-Ti, Ti-6Al-4V and ECAP-Ti (NaOH처리와 SBF침적에 따른 CP-Ti, Ti-6Al-4V 및 ECAP-Ti의 표면 아파타이트 성장)

  • Oh Seok-Jin;Ruy Jae-Gyeoung;Lee Seung-Woo;Kim Yun-Jong;Han Man-So;Kim Chang-Hyu
    • Korean Journal of Materials Research
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    • v.14 no.12
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    • pp.893-899
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    • 2004
  • Even though Ti-6Al-4V has gained popularity as an implant material, the possible dissolution of Al and V ions in body fluids remains a matter of concern. Though commercially pure Ti (Cp-Ti) overcomes this problem, the mechanical strength of pure titanium remains very low. Thus, in this experiment Cp-Ti was processed by Equal channel angular processing (ECAP), in order to increase the mechanical strength. The biocompatibility of ECAP-Ti, Cp-Ti and Ti-6Al-4V was examined by the apatite formation on each sample surface, after treating the surface with 5M NaOH and soaking in Simulated body fluids (SBF). Initially, the samples were mechanically polished on silicone carbide paper (#2000). The polished samples were treated with 5M NaOH solution at $60^{\circ}C$ for 24 hours. The NaOH treated samples were washed gently with distill water and dried at $40^{\circ}C$ for 1 day. The dried samples were heat treated in air at $600^{\circ}C$ for 1 hour. The surface morphology of these samples were studied using SEM and XRD. The SEM studies showed network of pores in all samples. The XRD showed oxide layer formation on Cp-Ti and Ti-6Al-4V. samples. However the oxide layer in ECAP-Ti was not substantial. These samples were immersed in SBF, kept at $36.5^{\circ}C$ for seven days period. At the end of 7 days, the apatite formation was confirmed only on Cp-Ti and was not observed in Ti-6Al-4V and ECAP-Ti. These observations of apatite formation relate to the fact that Cp-Ti showed greater oxide layer than other samples. The apatite examined was confirmed as tricalcium phosphate (TCP) using EDS and XRD.