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In-Chul Yeo 2 Articles
Evaluation of TiO2 Photocatalytic Activity with Addition of Carbon Nanotube
In-Chul Yeo, In-Cheol Kang
J Powder Mater. 2016;23(6):458-465.   Published online December 1, 2016
DOI: https://doi.org/10.4150/KPMI.2016.23.6.458
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A TiO2/CNT nanohybrid photocatalyst is synthesized via sol-gel route, with titanium (IV) isopropoxide and multi-walled carbon nanotubes (MWCNTs) as the starting materials. The microstructures and phase constitution of the nanohybrid TiO2/CNT (0.005wt%) samples after calcination at 450°C, 550°C and 650°C in air are compared with those of pure TiO2 using field-emission scanning electron microscopy and X-ray diffraction, respectively. In addition, the photocatalytic activity of the nanohybrid is compared with that of pure TiO2 with regard to the degradation of methyl orange under visible light irradiation. The TiO2/CNT composite exhibits a fast grain growth and phase transformation during calcination. The nanocomposite shows enhanced photocatalytic activity under visible light irradiation in comparison to pure TiO2 owing to not only better adsorption capability of CNT but also effective electron transfer between TiO2 and CNTs. However, the high calcination temperature of 650°C, regardless of addition of CNT, causes a decrease in photocatalytic activity because of grain growth and phase transformation to rutile. These results such as fast phase transformation to rutile and effective electron transfer are related to carbon doping into TiO2.

Control of Nano-Scaled Surface Microstructure of Al Sample for Improving Heat Release Ability
In-Chul Yeo, In-Cheol Kang
J Powder Mater. 2015;22(1):21-26.   Published online February 1, 2015
DOI: https://doi.org/10.4150/KPMI.2015.22.1.21
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In this study, the control of microstructure for increasing surface roughness of Al with an electro-chemical reaction and a post treatment is systematically investigated. The Al specimen is electro-chemically treated in an electrolyte. In condition of the post treatment at 100°C for 10 min, a change of the surface microstructure occur at 50V (5 min), and a oxidized layer is at 400V, to which lead a decreasing surface roughness. The minimum temperature of the post treatment for a change of microstructure is 80°C. Moreover, in the condition of 300V (5 min), the electro-chemical reaction is followed by the post treatment at 100°C, the critical enduring time for the change of microstructure is 3 min. The longer post treatment time leads to the rougher surface. The treated Al specimen demonstrate better heat release ability owing to the higher surface roughness than the non-treated Al.

Citations

Citations to this article as recorded by  
  • Measurement of the Thermal Conductivity of a Polycrystalline Diamond Thin Film via Light Source Thermal Analysis
    Hojun Kim, Daeyoon Kim, Nagyeong Lee, Yurim Lee, Kwangbae Kim, Ohsung Song
    Korean Journal of Materials Research.2021; 31(12): 665.     CrossRef
  • Effect of Tin Addition on the Melting Temperatures and Mechanical Properties of Al-Si-Cu Brazing Filler Metals
    Min Sang Kim, Chun Woong Park, Jong Min Byun, Young Do Kim
    Korean Journal of Materials Research.2016; 26(7): 376.     CrossRef

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