2016Journal of Advanced CeramicsOpen access

Effect of surface morphology on wettability conversion

Xia Kong, Yawei Hu, Xiaofang Wang, Wei Pan

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Abstract

A hierarchical structural surface of TiO 2 film with reversibly light-switchable wettability between superhydrophobicity and superhydrophilicity on metal substrate was fabricated through simply dip-coating method from TiO 2 precursor solution containing TiO 2 nanoparticles with the average diameter 25 nm (P25), followed by heat-treatment and modification with fluoroalkylsilane (FAS) molecules. The morphology, phase and crystallographic structure, and chemical composite of the as-prepared TiO 2 film were characterized by scanning electron microscopy (SEM), X-ray diffraction (XRD), and X-ray photoelectron spectroscopy (XPS). The wettability of TiO 2 film was characterized by a drop shape analyzer. The water contact angle of superhydrophobic TiO 2 film was up to 165.6°. Under UV irradiation, the water contact angle decreased and the superhydrophobic TiO 2 film became superhydrophilic because of hydroxyl groups absorption on the TiO 2 surface. Meanwhile, the surface morphology of TiO 2 film, which resulted from the TiO 2 nanoparticles added in TiO 2 precursor solution, had a significant effect on the wettability conversion of TiO 2 film and enhanced the switch from hydrophobicity to hydrophilicity. The wettability could be reversibly switched between superhydrophobicity and superhydrophilicity via alternation of UV exposure and dark storage.

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A hierarchical structural surface of TiO 2 film with reversibly light-switchable wettability between superhydrophobicity and superhydrophilicity on metal substrate was fabricated through simply dip-coating method from TiO 2 precursor solution containing TiO 2 nanoparticles with the average diameter 25 nm (P25), followed by heat-treatment and modification with fluoroalkylsilane (FAS) molecules. The morphology, phase and crystallographic structure, and chemical composite of the as-prepared TiO 2 film were characterized by scanning electron microscopy (SEM), X-ray diffraction (XRD), and X-ray photoelectron spectroscopy (XPS). The wettability of TiO 2 film was characterized by a drop shape analyzer. The water contact angle of superhydrophobic TiO 2 film was up to 165.6°. Under UV irradiation, the water contact angle decreased and the superhydrophobic TiO 2 film became superhydrophilic because of hydroxyl groups absorption on the TiO 2 surface. Meanwhile, the surface morphology of TiO 2 film, which resulted from the TiO 2 nanoparticles added in TiO 2 precursor solution, had a significant effect on the wettability conversion of TiO 2 film and enhanced the switch from hydrophobicity to hydrophilicity. The wettability could be reversibly switched between superhydrophobicity and superhydrophilicity via alternation of UV exposure and dark storage.

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Available abstract

A hierarchical structural surface of TiO 2 film with reversibly light-switchable wettability between superhydrophobicity and superhydrophilicity on metal substrate was fabricated through simply dip-coating method from TiO 2 precursor solution containing TiO 2 nanoparticles with the average diameter 25 nm (P25), followed by heat-treatment and modification with fluoroalkylsilane (FAS) molecules. The morphology, phase and crystallographic structure, and chemical composite of the as-prepared TiO 2 film were characterized by scanning electron microscopy (SEM), X-ray diffraction (XRD), and X-ray photoelectron spectroscopy (XPS). The wettability of TiO 2 film was characterized by a drop shape analyzer. The water contact angle of superhydrophobic TiO 2 film was up to 165.6°. Under UV irradiation, the water contact angle decreased and the superhydrophobic TiO 2 film became superhydrophilic because of hydroxyl groups absorption on the TiO 2 surface. Meanwhile, the surface morphology of TiO 2 film, which resulted from the TiO 2 nanoparticles added in TiO 2 precursor solution, had a significant effect on the wettability conversion of TiO 2 film and enhanced the switch from hydrophobicity to hydrophilicity. The wettability could be reversibly switched between superhydrophobicity and superhydrophilicity via alternation of UV exposure and dark storage.

Key concepts: Superhydrophilicity, Wetting, Contact angle, Materials science, X-ray photoelectron spectroscopy, Chemical engineering, Scanning electron microscope, Nanoparticle

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