4.8 Article

Thermally Induced Superhydrophilicity in TiO2 Films Prepared by Supersonic Aerosol Deposition

期刊

ACS APPLIED MATERIALS & INTERFACES
卷 5, 期 13, 页码 6155-6160

出版社

AMER CHEMICAL SOC
DOI: 10.1021/am401083y

关键词

superhydrophilic; aerosol deposition; surface roughness; wetting; annealing

资金

  1. Human Resources Development of the Korea Institute of Energy Technology Evaluation and Planning (KETEP) [20124030200120]
  2. Converging Research Center Program through the Ministry of Education, Science and Technology [2010K000969]

向作者/读者索取更多资源

Superhydrophilic and superhydrophobic surfaces enable self-cleaning phenomena, either forming a continuous water film or forming droplets that roll off the surface, respectively. TiO2 films are well-known for their extreme hydrophilicity and photocatalytic characteristics. Here, we describe nanostructured TiO2 thin films prepared by supersonic aerosol deposition, including a thorough study of the effects of the annealing temperature on the crystal structure, surface morphology, surface roughness, and wetting properties. Powder X-ray diffraction showed that supersonic deposition resulted in fragmentation and amorphization of the micrometer-size anatase (60%)-rutile (40%) precursor powder and that, upon annealing, a substantial fraction of the film (similar to 30%) crystallized in the highly hydrophilic but metastable brookite phase. The film morphology was also somewhat modified after annealing. Scanning electron microscopy and atomic force microscopy revealed rough granular films with high surface roughness. The as deposited TiO2 films were moderately hydrophilic with a water contact angle (0) of similar to 45 degrees, whereas TiO2 films annealed at 500 degrees C became superhydrophilic (theta similar to 0 degrees) without UV illumination. This thermally induced superhydrophilicity of the TiO2 films can be explained on the basis of the combined effects of the change in the crystal structure, surface microstructure, and surface roughness. Supersonic aerosol deposition followed by annealing is uniquely able to produce these nanostructured films containing a mixture of all three TiO2 phases (anatase, rutile, and brookite) and exhibiting superhydrophilicity without UV illumination.

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