4.6 Article

Synthesis, Characterization and Photocatalytic Activity of Nanocrystalline First Transition-Metal (Ti, Mn, Co, Ni and Zn) Oxisde Nanofibers by Electrospinning

期刊

APPLIED SCIENCES-BASEL
卷 9, 期 1, 页码 -

出版社

MDPI
DOI: 10.3390/app9010008

关键词

nanocrystalline metal oxide nanofibers; electrospinning; controlled calcination; photocatalytic efficiency

资金

  1. State Natural Sciences Fund, China [21506236, 51372276]
  2. Research and Application of Gelatin Green Manufacturing 2.0 Technology by Enzymatic method [KFJ-STS-ZDTP-016]
  3. Hangzhou Research Institute of Technical Institute of Physics and Chemistry, CAS Fund [2016050201, 2016050202]

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In this work, five nanocrystalline first transition-metal (Ti, Mn, Co, Ni and Zn) oxide nanofibers were prepared by electrospinning and controlled calcination. The morphology, crystal structure, pore size distribution and specific surface area were systematically studied by scanning electron microscope (SEM), transmission electron microscope (TEM), surface and pore analysis, and thermo gravimetric analyzer (TGA). The results reveal that the obtained nanofibers have a continuously twisted three-dimensional scaffold structure and are composed of neat nanocrystals with a necklace-like arrangement. All the samples possess high specific surface areas, which follow the order of NiO nanofiber (393.645 m(2)/g) > TiO2 nanofiber (121.445 m(2)/g) > ZnO nanofiber (57.219 m(2)/g) > Co3O4 nanofiber (52.717 m(2)/g) > Mn2O3 nanofiber (18.600 m(2)/g). Moreover, the photocatalytic degradation of methylene blue (MB) in aqueous solution was investigated in detail by employing the five kinds of metal oxide nanofibers as photocatalysts under ultraviolet (UV) irradiation separately. The results show that ZnO, TiO2 and NiO nanofibers exhibit excellent photocatalytic efficiency and high cycling ability to MB, which may be ascribed to unique porous structures and the highly efficient separation of photogenerated electron-hole pairs. In brief, this paper aims to provide a feasible approach to achieve five first transition-metal oxide nanofibers with excellent performance, which is important for practical applications.

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