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One-dimensional titania nanotubes annealed at various temperatures for the photocatalytic degradation of low concentration gaseous pollutants 被引量:1

One-dimensional titania nanotubes annealed at various temperatures for the photocatalytic degradation of low concentration gaseous pollutants
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摘要 In this study, one-dimensional titania nanotubes (TNTs) were synthesized using a combined process of chemical and hydrothermal treatments, and their activities for the photocatalytic reactions of selected gaseous pollutants at sub-ppm levels were determined. Additionally, the properties of the TNTs were examined using selected spectroscopic methods. The annealed TNTs showed higher photocatalytic activities for the four target compounds than did the unannealed TNTs. For all the target compounds except benzene, the effect of the annealing temperature on the degradation efficiency was difficult to determine because all degradation efficiencies were very high. However, for benzene, which decomposed with a low efficiency, the degradation activities of the TNTs increased as the treatment temperature was increased from 250 to 300 ℃, while they decreased slightly when the temperature was increased from 300 to 400 ℃. These findings confirm the presence of an optimal annealing temperature for the synthesis of TNTs. Moreover, the average degradation extents for benzene, toluene, ethylbenzene, and o-xylene decreased from 92%, 96%, 99%, and 98% to 77%, 86%, 92%, and 94%, respectively, as the airstream flow rate increased within the range of 1-4L/min. The average degradation extents decreased from 12%, 75%, 87%, and 88% to 3%, 29%, 46%, and 51%, respectively, as the input concentration increased from 0.4 to 1.9 ppm. Overall, these findings suggest that one-dimensional TNTs can be effectively utilized for the degradation of gaseous pollutants under optimal operational conditions. In this study, one-dimensional titania nanotubes (TNTs) were synthesized using a combined process of chemical and hydrothermal treatments, and their activities for the photocatalytic reactions of selected gaseous pollutants at sub-ppm levels were determined. Additionally, the properties of the TNTs were examined using selected spectroscopic methods. The annealed TNTs showed higher photocatalytic activities for the four target compounds than did the unannealed TNTs. For all the target compounds except benzene, the effect of the annealing temperature on the degradation efficiency was difficult to determine because all degradation efficiencies were very high. However, for benzene, which decomposed with a low efficiency, the degradation activities of the TNTs increased as the treatment temperature was increased from 250 to 300 ℃, while they decreased slightly when the temperature was increased from 300 to 400 ℃. These findings confirm the presence of an optimal annealing temperature for the synthesis of TNTs. Moreover, the average degradation extents for benzene, toluene, ethylbenzene, and o-xylene decreased from 92%, 96%, 99%, and 98% to 77%, 86%, 92%, and 94%, respectively, as the airstream flow rate increased within the range of 1-4L/min. The average degradation extents decreased from 12%, 75%, 87%, and 88% to 3%, 29%, 46%, and 51%, respectively, as the input concentration increased from 0.4 to 1.9 ppm. Overall, these findings suggest that one-dimensional TNTs can be effectively utilized for the degradation of gaseous pollutants under optimal operational conditions.
出处 《Particuology》 SCIE EI CAS CSCD 2015年第2期86-92,共7页 颗粒学报(英文版)
基金 supported by the National Research Foundation of Korea(NRF) grant funded by the Korean government(MEST)(No.2011-0027916) the Korean government(MSIP) through GCRC-SOP(No.2011-0030013)
关键词 vGaseous pollutant Annealing temperature Degradation efficiency Airstream flow rate vGaseous pollutant Annealing temperature Degradation efficiency Airstream flow rate
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  • 1毋伟,蔡意文,陈建峰,谢京芳.表面改性方式对纳米氧化锌紫外吸收性能影响研究[J].功能材料,2004,35(z1):2522-2525. 被引量:4
  • 2Ao, C. H., Lee, S. C., Yu, Y. Z., & Xu, J. H. (2004). Photodegradation of formaldehyde by photocatalyst TiO2: Effects on the presences of NO, SO2 and VOCs. Applied Catalysis B: Environmental, 54, 41-50.
  • 3Asahi, R., Morikawa, T., Ohwaki, T., Aold, K., & Taga, Y. (2001). Visible- light photocatalysis in nitrogen-doped titanium oxides. Science, 293, 269- 271.
  • 4Baiju, K. V., Sibu, C. P.. Rajesh, K., Krishna Pillai, P., Mukundan, P., Warder, K. G, K., et al. (2005). An aqueous sol-gel route to synthesize nanosized lanthana-doped tita- nia having an increased anatase phase stability for photocatalytic application. Materials Chemistry and Physics, 90, 123-127.
  • 5Burda, C., Lou, Y., Chert, X., Samia, 'A. C. S., Stout, J., & Gole, J. L. (2003). Enhanced nitrogen doping in TiO2 nanoparticles. Nano Letters, 3, 1049-1051.
  • 6De Vos, D. E., Dams, M., Sels, B. F., & Jacobs, P. A. (2002). Ordered mesoporous and microporous molecular sieves functionalized with transition metal com- plexes as catalysts for selective organic transformations. Chemical Reviews, 102, 3615-3640.
  • 7Fujishima, A., Rao, T. N., & Tryk, D. A. (2000). Titanium dioxide photocataly- sis. Journal of Photochemistry and Photobiology C: Photochemistry Reviews, 1,1-21.
  • 8Gregg, S. J., & Sing, K. S. W. (1982). Adsorption, surface area and porosity (2nd ed.). London: Academic Press.
  • 9Hoflmann, M. R., Martin, S. f., Choi, W., & Bahnemann, D. W. (1995). Environ- mental applications of semiconductor photocatalysis. Chemical Reviews, 95, 69-96.
  • 10Li, F. B., Li, X. Z., Ao, C. H., Lee, S. C., & Hou, M. F. (2005). Enhanced photocat- alytic degradation of VOCs using La^3+-TJ02 catalysts for indoor air purificaLion. Chemosphere, 59, 787-800.

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