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A facile route to tungsten oxide nanomaterials with controlled morphology and structure

A facile route to tungsten oxide nanomaterials with controlled morphology and structure
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摘要 Various tungsten oxide-based nanomaterials have been prepared by a modified plasma arc gas condensation technique without the use of catalysts or substrates. These products could be obtained by controlling the processing parameters during experiment. All the as-obtained samples were characterized by field emission gun scanning electron microscopy, high-resolution transmission electron microscopy, and X- ray diffraction techniques. The results revealed that as-prepared tungsten oxide nanomaterials (WO3, W190s5 and WsO14) with different phases and morphologies could be obtained by decreasing the oxygen content in the chamber. In addition, W18049 nanotubes and nanorod bundles were fabricated by con- trolling the Ar/O2 ratio under He plasma gas. W18Q9/TiO2 core-shell nanoparticles were also prepared by evaporating a dual target. The experimental results showed that the present technique is unique and feasible for the fabrication of nanomaterials for use in different applications. Various tungsten oxide-based nanomaterials have been prepared by a modified plasma arc gas condensation technique without the use of catalysts or substrates. These products could be obtained by controlling the processing parameters during experiment. All the as-obtained samples were characterized by field emission gun scanning electron microscopy, high-resolution transmission electron microscopy, and X- ray diffraction techniques. The results revealed that as-prepared tungsten oxide nanomaterials (WO3, W190s5 and WsO14) with different phases and morphologies could be obtained by decreasing the oxygen content in the chamber. In addition, W18049 nanotubes and nanorod bundles were fabricated by con- trolling the Ar/O2 ratio under He plasma gas. W18Q9/TiO2 core-shell nanoparticles were also prepared by evaporating a dual target. The experimental results showed that the present technique is unique and feasible for the fabrication of nanomaterials for use in different applications.
出处 《Particuology》 SCIE EI CAS CSCD 2011年第5期517-521,共5页 颗粒学报(英文版)
基金 the financial support of this work by the National Science Council of Taiwan, China under grant number NSC 98-2221-E-027-035-MY3
关键词 Plasma arc gas condensation Titanium oxide Tungsten oxide Nanoparticle Nanorods Plasma arc gas condensation Titanium oxide Tungsten oxide Nanoparticle Nanorods
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  • 1Amelinckx, S., Bernaerts, D., Zhang, X. B., van Tendeloo, G., & van Landuyt, J. (1995). A structure model and growth mechanism for multishell carbon nanotubes. Science, 267, 1334-1338.
  • 2Ebbesen, T. W., & Ajayan, P. M. (1992). Large scale synthesis of carbon nanotubes. Nature, 358, 220-222.
  • 3Gleiter, H. (1989). Nanocrystalline materials. Progress in Materials Science, 33, 223-315.
  • 4Gu, G., Zheng, B., Hart, W. Q., Roth, S., & Liu, J. (2002). Tungsten oxide nanowires on tungsten substrates. Nano Letters, 2, 849-851.
  • 5lwama,-S., & Hayakawa, K. (1992). Vaporization and condensation of met- als in a flowing gas with high velocity. Nanostrucmred Materials, 1, !13-118.
  • 6Jang, J. H., & Lin,J. (2008). An investigation of the synthesis of metallic nano-particles by laser ablation. Surface &Coatin~;s TechnologY, 202, 6136-6141.
  • 7JimOnez, v., Sflnchez, P., Valverde,J. L., & Romero, A. (2009). Influence of the activat- ing agent and the inert gas (type and flow) used in an activation process for the porosity development of carbon nanoflbers. Journal of Colloid Interface Science, 336, 712-722.
  • 8Kitamura, Y., Okinaka, N., Shibayama, T., Mahaney, O. O. P., Kusano, D., Ohtani, B., et al. (2007). Combustion synthesis of TiO2 nanoparticles as pbotocatalyst. Powder Technology, 176, 93-98,.
  • 9Kuang, Q., Jiang, Z. Y., Xie, Z. X., Lin, S. C., Lin, Z. W., Xie, S. Y., et al. (2005). Tailoring the optical property by a three-dimensional epitaxial heterostructure: A case of ZnO/SnO2.Journal of the American Chemical Society, 127, 11777-11778.
  • 10Su, C. Y., & Lin, H. C. (2009). Direct route to tungsten oxide nanorod bundles: Microstructures and electro-optical properties. Journal of Physical Chemistry C, 113, 4042-4046.

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